EP3873458A1 - Inhibitors of type 3 secretion system and antibiotic therapy - Google Patents
Inhibitors of type 3 secretion system and antibiotic therapyInfo
- Publication number
- EP3873458A1 EP3873458A1 EP19878630.3A EP19878630A EP3873458A1 EP 3873458 A1 EP3873458 A1 EP 3873458A1 EP 19878630 A EP19878630 A EP 19878630A EP 3873458 A1 EP3873458 A1 EP 3873458A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- t3ss
- tanshinone
- inhibitor
- pscg
- pharmaceutical composition
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
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- FRTCZULBZBTNEE-UHFFFAOYSA-N tanshinol B Natural products CC1=COC2C1C(=O)C(=O)c3c4CCCC(C)(O)c4ccc23 FRTCZULBZBTNEE-UHFFFAOYSA-N 0.000 description 1
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- RTKIYNMVFMVABJ-UHFFFAOYSA-L thimerosal Chemical compound [Na+].CC[Hg]SC1=CC=CC=C1C([O-])=O RTKIYNMVFMVABJ-UHFFFAOYSA-L 0.000 description 1
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Classifications
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P31/00—Antiinfectives, i.e. antibiotics, antiseptics, chemotherapeutics
- A61P31/04—Antibacterial agents
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/33—Heterocyclic compounds
- A61K31/335—Heterocyclic compounds having oxygen as the only ring hetero atom, e.g. fungichromin
- A61K31/34—Heterocyclic compounds having oxygen as the only ring hetero atom, e.g. fungichromin having five-membered rings with one oxygen as the only ring hetero atom, e.g. isosorbide
- A61K31/343—Heterocyclic compounds having oxygen as the only ring hetero atom, e.g. fungichromin having five-membered rings with one oxygen as the only ring hetero atom, e.g. isosorbide condensed with a carbocyclic ring, e.g. coumaran, bufuralol, befunolol, clobenfurol, amiodarone
-
- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12Q—MEASURING OR TESTING PROCESSES INVOLVING ENZYMES, NUCLEIC ACIDS OR MICROORGANISMS; COMPOSITIONS OR TEST PAPERS THEREFOR; PROCESSES OF PREPARING SUCH COMPOSITIONS; CONDITION-RESPONSIVE CONTROL IN MICROBIOLOGICAL OR ENZYMOLOGICAL PROCESSES
- C12Q1/00—Measuring or testing processes involving enzymes, nucleic acids or microorganisms; Compositions therefor; Processes of preparing such compositions
- C12Q1/02—Measuring or testing processes involving enzymes, nucleic acids or microorganisms; Compositions therefor; Processes of preparing such compositions involving viable microorganisms
- C12Q1/18—Testing for antimicrobial activity of a material
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/48—Biological material, e.g. blood, urine; Haemocytometers
- G01N33/50—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
- G01N33/53—Immunoassay; Biospecific binding assay; Materials therefor
- G01N33/566—Immunoassay; Biospecific binding assay; Materials therefor using specific carrier or receptor proteins as ligand binding reagents where possible specific carrier or receptor proteins are classified with their target compounds
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/48—Biological material, e.g. blood, urine; Haemocytometers
- G01N33/50—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
- G01N33/53—Immunoassay; Biospecific binding assay; Materials therefor
- G01N33/569—Immunoassay; Biospecific binding assay; Materials therefor for microorganisms, e.g. protozoa, bacteria, viruses
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02A—TECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE
- Y02A50/00—TECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE in human health protection, e.g. against extreme weather
- Y02A50/30—Against vector-borne diseases, e.g. mosquito-borne, fly-borne, tick-borne or waterborne diseases whose impact is exacerbated by climate change
Definitions
- the invention relates generally to antibiotic compounds and methods of treating or preventing bacterial infections using the same, and more particularly, but not exclusively, to compounds that inhibit biogenesis of the Type 3 Secretion System (T3SS) needle, including tanshinone and tanshinone analogs, and methods of using the same.
- T3SS Type 3 Secretion System
- Antimicrobial resistance is becoming one of the greatest threats to public health.
- T3SS Type 3 Secretion System
- the disclosure provides in one aspect a method of treating or preventing a Gram-negative bacterial infection in a subject in need thereof, the method comprising administering to the subject a therapeutically effective amount of an inhibitor of Type 3 Secretion System (T3SS), wherein the inhibitor of T3SS is selected from the group consisting of a tanshinone, tanshinone analog, and the pharmaceutically acceptable salts, solvates, hydrates, cocrystals, or prodrugs thereof.
- T3SS Type 3 Secretion System
- the tanshinone is tanshinone 1 (TSN1).
- the tanshinone analog is dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN).
- compositions for the treatment or prevention of a Gram-negative bacterial infection in a subject in need thereof comprising an inhibitor of Type 3 Secretion System (T3SS), wherein the inhibitor of T3SS is selected from the group consisting of a tanshinone, tanshinone analog, and the pharmaceutically acceptable salts, solvates, hydrates, cocrystals, or prodrugs thereof.
- T3SS Type 3 Secretion System
- a method of inhibiting treating or preventing a Gram-negative bacterial infection in a subject in need thereof comprising administering to the subject a therapeutically effective amount of an inhibitor of Type 3
- T3SS Secretion System
- the disclosure provides a pharmaceutical composition for the treatment or prevention of a Gram -negative bacterial infection in a subject in need thereof, the composition comprising an inhibitor of Type 3 Secretion System (T3SS), and a pharmaceutically acceptable carrier, wherein the inhibitor of T3SS blocks interaction between a T3SS needle protein and a T3SS chaperone protein.
- T3SS Type 3 Secretion System
- T3SS Secretion System
- the candidate agent is identified as an inhibitor of T3SS if the FP is decreased relative to a reference FP level.
- the disclosure provides a method of treating or preventing a Gram negative bacterial infection in a subject in need thereof, the method comprising administering to the subject a therapeutically effective amount of an agent identified as an inhibitor of Type 3 Secretion System (T3SS) according to the method of identifying T3SS inhibitors as described herein.
- T3SS Type 3 Secretion System
- compositions for the treatment or prevention of a Gram-negative bacterial infection in a subject in need thereof comprising an agent identified as an inhibitor of Type 3 Secretion System (T3SS) according to the methods of identifying T3SS inhibitors describe herein, and a pharmaceutically acceptable carrier.
- T3SS Type 3 Secretion System
- the Gram-negative bacteria is Pseudomonas, Escherichia , Salmonella , Shigella , Yersinia , Vibrio , Burkholderia , or Chlamydia.
- the Gram-negative bacteria is Escherichia coli or Pseudomonas aeruginosa.
- the bacterial infection is a lung infection, skin infection, soft tissue infection, gastrointestinal infection, urinary tract infection, meningitis, or sepsis.
- the bacterial infection is caused by and/or associated with Pseudomonas aeruginosa.
- the bacterial infection is pneumonia.
- the subject is human.
- a method of treating a Gram-negative bacterial infection in a subject in need thereof comprising administering to the subject a therapeutically effective amount of an inhibitor of Type 3 Secretion System (T3SS) selected from the group consisting of tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl), dihydrotanshinone
- T3SS Type 3 Secretion System
- a pharmaceutical composition for the treatment of a Gram-negative bacterial infection in a subject in need thereof comprising an inhibitor of Type 3 Secretion System (T3SS) selected from the group consisting of tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl), dihydrotanshinone (dHTSN), and the pharmaceutically acceptable salts, solvates, hydrates, cocrystals, or prodrugs thereof; and a pharmaceutically acceptable carrier.
- T3SS Type 3 Secretion System
- FIGS. 1 A-1B illustrate biogenesis of the Pseudomonas aeruginosa T3SS needle.
- FIG. 1 A shows a schematic representation of the T3SS of Pseudomonas aeruginosa , adapted from Abrusci et al. 2014.
- FIG. 1B shows a crystal structure of the heterotrimeric complex of PscE- PscF-PscG determined by Quinard et al. Proc Natl Acad Sci USA 2007, 104 (19), 7803-7808. Shown in red are residues 54-85 of PscF, which makes direct interactions with PscG (but not PscE). The major a-helix at the C-terminus of PscF energetically dictates PscF binding to the stable heterdimeric complex of PscE-PscG.
- FIGS. 2A-2B illustrate characterization of synthetic peptides/proteins by HPLC, ESI-MS and CD spectroscopy.
- FIG. 2A shows chemically synthesized PscF 54 85 , PscE and PscG characterized by RP-HPLC and ESI-MS.
- RP-HPLC analyses were performed at 40 °C on a Waters XBridge C18 column (4.6x 150 mm, 3.5 pm) running a 30-min, 5-65% linear gradient of acetonitrile in water containing 0.1% TFA at a flow rate of 1 ml/min.
- the molecular masses were ascertained by ESI-MS, in agreement with the calculated values.
- FIG. 1A shows chemically synthesized PscF 54 85 , PscE and PscG characterized by RP-HPLC and ESI-MS.
- RP-HPLC analyses were performed at 40 °C on a Waters XBridge C18 column (4.6x
- 2B shows circular dichroism spectra obtained at 25 °C of synthetic PscE, PscF, PscG, PscE-PscG heterodimer and PscE-PscF-PscG heterotrimer at 20 pM each in 10 mM phosphate buffer, pH 7.4.
- FIGS. 3A-3E illustrate identification of tanshinone derivatives as inhibitors of the biogenesis of the Pseudomonas aeruginosa T3SS needle.
- FIG. 3 A shows a strategy for the design of a fluorescence polarization assay for high-throughput screening (HTS). The difference in fluorescence polarization between PSCE- FAM PSCF-PSCG (high) and FAM PSCF (low) forms the basis of a physical readout for HTS.
- FIG. 1 shows a strategy for the design of a fluorescence polarization assay for high-throughput screening (HTS).
- HTS high-throughput screening
- FIG. 3B shows representative quantification by isothermal titration calorimetry of the interaction of PscF 69 85 with a preformed PscE-PscG heterodimer at 25 °C in 10 mM Tris, 150 mM NaCl, 1 mM EDTA, pH 7.0.
- FIG. 3C shows representative quantification by fluorescence polarization of the interaction of FAM PSCF 69'85 with a preformed PscE-PscG heterodimer at room temperature in 10 mM Tris, 150 mM NaCl, 1 mM EDTA, pH 7.0.
- FIG. 3D shows representative competition of PscF 69 85 , tanshinone 1 (TSN1),
- FIG. 3E shows chemical structures of TSN1, dHTSNl and dHTSN.
- FIGS. 4A-4C show structural characterization of tanshinone derivatives interacting with PscE-PscG by NMR spectroscopy and molecular modeling.
- FIG. 4A shows the 15 N-3 ⁇ 4 HSQC spectra of 15 N-labelled PscG of the PscE-PscG heterodimer in the presence (gray) and absence (black) of dHTSNl. Circled are the resonance peaks broadening or shifting upon binding to dHTSNl. Inset: the amide resonance peaks of tryptophan side-chains in 15 N-labelled PscG.
- FIG. 4A shows the 15 N-3 ⁇ 4 HSQC spectra of 15 N-labelled PscG of the PscE-PscG heterodimer in the presence (gray) and absence (black) of dHTSNl. Circled are the resonance peaks broadening or shifting upon binding to dHTSNl. Inset: the amide resonance peaks of tryptophan side-
- FIG. 4B shows the crystal structure of the PscE-PscF-PscG heterotrimer [15] displaying four Trp residues of PscG (light gray), three of which, W67, W73 and W79, are located in the same a- helix involved in direct interactions with PscF (dark gray).
- FIG. 4C shows TSN1, dHTSNl and dHTSN docked in the PscF -binding pocket of PscG.
- Molecular modeling identifies W79 as the most probable Trp residue involved in direct interactions with tanshinones.
- FIGS. 5A-5B show functional characterization of tanshinone derivatives as inhibitors of the biogenesis of the Pseudomonas aeruginosa T3SS needle In vitro.
- FIG. 5 A shows effects of tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl), dihydrotanshinone (dHTSN) and cryptotanshinone (crpTSN) at 100 mM on cell viability of Pseudomonas aeruginosa strain PAOl and murine macrophage cell line J774A.1.
- the data are averages of three independent experiments.
- FIG. 1 shows effects of tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl), dihydrotanshinone (dHTSN) and cryptotanshinone (crpTSN) at 100 mM on cell viability of Pseudomonas aeruginosa strain PAOl and murine macrophag
- 5B shows effects of tanshinone compounds at 100 pM on the secretion of ExoS by PAOl grown under low-calcium conditions where the T3SS is transcriptionally activated.
- the data are averages of three independent experiments. Note that tanshinones were initially dissolved in DMSO and diluted into culture medium for in vitro assays, where 2% DMSO in culture medium was used as negative control.
- FIGS. 6A-6C illustrate functional characterization of tanshinone derivatives as inhibitors of the biogenesis of the Pseudomonas aeruginosa T3SS needle in vitro.
- FIG. 6A shows inhibition of the cytotoxicity of PAOl to murine macrophages by different concentrations of tanshinone compounds as measured by the LDH release assay. The data are averages of three independent experiments.
- FIG. 6B shows a Western blot analysis of caspase 1 activation in PAOl -infected murine macrophages treated with tanshionone compounds at 100 pM.
- FIG. 6C shows inhibition of intracellular proliferation of PAOl in murine macrophages by different concentrations of tanshinone compounds. The data are averages of three independent experiments. Note that tanshinones were initially dissolved in DMSO and diluted into culture medium for in vitro assays, where 2% DMSO in culture medium was used as negative control.
- FIGS. 7A-7C show functional characterization of tanshinone derivatives as inhibitors of the biogenesis of the Pseudomonas aeruginosa T3SS needle in vivo.
- FIG. 7B shows reduction of bacterial burden in the bronchoalveolar lavage of PAOl -infected mice by tanshinone compounds.
- FIG. 7C shows H&E staining of the lungs from normal mice and PAOl- infected mice treated with tanshinone compounds and control. Note that tanshinones were initially dissolved in DMSO and diluted into PBS for in vivo assays, where 1% DMSO in PBS was used as negative control. The aqueous solubility of tanshinones in the presence of 1%
- DMSO ranges from 200 to 300 mM (FIG. 24).
- FIG. 8 illustrates the strategy for the preparation of PscE, PscF and PscG using solid phase peptide synthesis coupled with native chemical ligation.
- PscE, PscF and PscG at an equal molar ratio were dissolved in 6 M GuHCl followed by a 6-fold dilution with and an overnight dialysis against PBS.
- FIGS. 9A-9C show PscF characterized by RP-HPLC and ESI-MS.
- FIG. 9 A shows PscF 54 85 .
- FIG. 9B shows FAM-PscF 69 85 .
- FIG. 9C shows PscF 69 85 .
- RP-HPLC analyses were performed on a Waters XBridge C18 column (4.6x 150 mm, 3.5 pm) running a 30-min gradient of acetonitrile from 5% to 65%. The molecular masses were ascertained by electrospray ionization mass spectrometry (ESI-MS).
- FIGS. 10A-10C show PscE peptides characterized by RP-HPLC and ESI-MS.
- FIG. 10B shows PscE 43 70 .
- FIG. 10C shows PscE 1 70 .
- RP-HPLC analyses were performed on a Waters XBridge C18 column (4.6x 150 mm, 3.5 pm) running a 30-min gradient of acetonitrile from 5% to 65%. The molecular masses were ascertained by electrospray ionization mass spectrometry (ESI-MS).
- FIGS. 11 A-l 1C PscG peptides characterized by RP-HPLC and ESI-MS.
- FIG. 11B shows PscG 76 114 CHO.
- FIG. 11C shows THZ-PscG 26 114 (CHO)4.
- RP-HPLC analyses were performed on a Waters XBridge C18 column (4.6x 150 mm, 3.5 pm) running a 30-min gradient of acetonitrile from 5% to 65%. The molecular masses were ascertained by electrospray ionization mass spectrometry (ESI-MS).
- FIGS. 12A-12D PscG peptides characterized by RP-HPLC and ESI-MS.
- FIG. 12A shows PSCG 26 114 (CHO) 4.
- FIG. 12C shows PSCG 1 114 (CHO) 4.
- FIG. 12D shows PscG 1 114 .
- RP-HPLC analyses were performed on a Waters XBridge C18 column (4.6x 150 mm, 3.5 pm) running a 30-min gradient of acetonitrile from 5% to 65%. The molecular masses were ascertained by electrospray ionization mass spectrometry (ESI-MS).
- FIGS. 13A-13D illustrate characterization of PscE, PscF and PscG.
- FIG. 13A shows a MW Standard calibration curve obtained on the Superdex 75 column (10/300 GL) using conalbumin (75000), ovalbumin (43000), carbonic anhydrase (29000), ribonuclease A (13700) and aprotinin (6500).
- the buffer was 10 mM Tris, 150 mM NaCl, 1 mM EDTA, pH 7.0, running at a flow rate of 0.5 ml/ml at room temperature.
- FIG. 13B shows elution of PscE-PscF-PscG on Superdex 75. The apparent molecular weight calculated from the standard calibration curve indicates the presence of a heterotrimeric complex.
- FIG. 13C shows RP-HPLC of the
- FIG. 13D is a plot showing thermal denaturation of PscG, PscE, PscF, PscG-PscE heterodimer and PscG-PscE-PscF heterotrimer. All peptides were prepared at 20 mM in PBS, monitored between 25 °C and 90 °C by CD spectroscopy at 222 nm.
- Tm melting temperature
- FIGS. 14A-14C illustrate characterization of PscE, PscF and PscG.
- FIG. 14A shows quantification of the interaction between PscF 69 85 and PscG by ITC in 10 mM Tris, 150 mM NaCl, 1 mM EDTA, pH 7.0.
- FIG. 14B shows quantification of the interaction between PscE and PscG by ITC in 10 mM Tris, 150 mM NaCl, 1 mM EDTA, pH 7.0.
- FIG. 14C shows
- FIGS. 15A-15D depict an initial FP screening of ten natural herbal compounds at four different concentrations: 1 mM (FIG. 15 A), 10 pM (FIG. 15B), 100 pM (FIG. 15C), and 1 mM (FIG. 15D). Significance compared with NC group (mock treated) was calculated using an unpaired t test, and p values are as follows: *p ⁇ 0.05, **p ⁇ 0.01, and ***p ⁇ 0.001.
- FIG. 16A shows the effects of different concentrations of tanshinone 1 on the circular dichroism spectrum of 20 mM PscG-PscE-PscF heterotrimer obtained at 25 °C in 10 mM phosphate buffer, pH 7.4.
- the helicity of the PscF-PscE-PscG complex progressively decreases as the concentration of tanshinone 1 increases.
- FIGS. 16B-16C show thermal denaturation of the PSCF 69'85 -PSCE-PSCG complex at 20 pM in PBS in the absence (FIG. 16B) and presence (FIG. 16C) of 300 pM tanshinone 1, monitored between 25 and 90 °C by CD spectroscopy at 222 nm.
- Nonlinear regression analyses yielded the Tm values of 54.8 and 52.3, respectively.
- FIG. 17 shows tanshinone analogues tested in this work. Note: -, concentration- dependent characteristics in the FP competition assay not observed; ND, not done. Significance compared with mock treated group was calculated by unpaired t test, and p values are as follows: ns, not significant (p > 0.05), *p ⁇ 0.05, **p ⁇ 0.01, and ***p ⁇ 0.001.
- FIGS. 18A-18C are a set of plots showing fluorescence spectra scanned from 400 nm to 800 nm with an excitation wavelength of 470 nm in 10 mM Tris buffer, 150 mM NaCl, 1 mM EDTA, 5% DMSO, pH 7.0.
- FIG. 18A shows tanshinone compounds alone at 200 pM, and 5% DMSO in Tris buffer was used as a control.
- FIG. 18B shows PscE-PscG at 100 nM in the presence of tanshinone compounds at 200 pM.
- FIG. 18C shows FAM-PscF 69 85 at 100 nM in the presence of tanshinone compounds at 200 pM.
- FIG. 19 shows SDS-PAGE analysis of recombinant PscG expressed in E. coli.
- S soluble fraction.
- IB inclusion bodies.
- FIG. 20 illustrates molecular docking of the three active tanshinone compounds into the hydrophobic groove formed between PscG (light gray) and PscE (dark gray).
- FIG. 21 is a plot showing cytotoxicity to murine macrophages of PAOl and PAOl ApscC in the presence of tanshinone compounds at 100 pM as determined by a lactate dehydrogenase (LDH) release assay. Three independent experiments were performed.
- LDH lactate dehydrogenase
- FIG. 22 shows cytotoxicity to murine macrophages of PAOl in the presence of tanshinone compounds at 100 pM as determined by a lactate dehydrogenase (LDH) release assay. Data were normalized against PAOl (in the absence of tanshinones) as the positive control and a negative control, PAOl ApscC. Average results of three independent experiments are shown as mean ⁇ SD.
- LDH lactate dehydrogenase
- FIG. 24 is a set of plots showing quantification of the aqueous solubility of tanshinones in 1% DMSO by RP-HPLC. Chromatograms were obtained on a Waters XB ridge Cl 8 column (4.6x 150 mm, 3.5 pm) running a 45-min gradient of acetonitrile from 5% to 95%.
- FIGS. 25A-25G show characterization of MBX1641.
- FIG. 25A shows MBX1641 characterized by RP-HPLC and ESI-MS.
- the RP-HPLC analysis was performed on a Waters XBridge C4 column (4.6x 150 mm, 3.5 pm) running a 30-min gradient of acetonitrile from 5% to 65%.
- the molecular mass was ascertained by electrospray ionization mass spectrometry (ESI- MS).
- FIG. 25B shows effects of MBX1641 on the cell viability of Pseudomonas aeruginosa strain PAOl and murine macrophage cell line J774A.1. The data are averages of three independent experiments.
- FIG. 25A shows MBX1641 characterized by RP-HPLC and ESI-MS.
- the RP-HPLC analysis was performed on a Waters XBridge C4 column (4.6x 150 mm, 3.5 pm) running a
- FIG. 25C shows effects of MBX1641 at 6.25 pM on the secretion of ExoS by PAOl grown under low-calcium conditions where the T3SS is transcriptionally activated. The data are averages of three independent experiments.
- FIG. 25D shows inhibition of the cytotoxicity of PAOl to murine macrophages by MBX1641 as measured by the LDH release assay. The data are averages of three independent experiments.
- FIG. 25E shows inhibition of intracellular proliferation of PAOl in murine macrophages by MBX1641. The data are averages of three independent experiments.
- FIG. 25F shows reduction of bacterial burden in the bronchoalveolar lavage of PAOl -infected mice by 100 pM MBX1641.
- 25G shows representative competition of PscF 69 85 (black) or MBX1641 (gray) with FAM-PscF 69 85 for binding to PscG-PscE heterodimer as quantified by fluorescence polarization at room
- FIGS. 26A-26B show structures of exemplary tanshinone or tanshinone analog compounds. DETAILED DESCRIPTION OF THE INVENTION
- the terms“administer,”“administration” or“administering” refer to (1) providing, giving, dosing, and/or prescribing by either a health practitioner or his authorized agent or under his or her direction according to the disclosure; and/or (2) putting into, taking or consuming by the mammal, according to the disclosure.
- co-administration encompass administration of two or more active pharmaceutical ingredients to a subject so that both active pharmaceutical ingredients and/or their metabolites are present in the subject at the same time.
- Co-administration includes simultaneous administration in separate compositions, administration at different times in separate compositions, or administration in a composition in which two or more active pharmaceutical ingredients are present. Simultaneous administration in separate compositions and administration in a composition in which both agents are present are preferred.
- the terms“active pharmaceutical ingredient” and“drug” include the compounds described herein and, more specifically: a T3SS inhibitor (e.g., a tanshinone or tanshinone analog, such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)).
- a T3SS inhibitor e.g., a tanshinone or tanshinone analog, such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)
- T3SS inhibitor e.g., a tanshinone or tanshinone analog, such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)
- T3SS component e.g., compounds that bind a T3SS needle protein or chaperone
- in vivo refers to an event that takes place in a subject’s body.
- in vitro' refers to an event that takes places outside of a subject’s body.
- In vitro assays encompass cell-based assays in which cells alive or dead are employed and may also encompass a cell-free assay in which no intact cells are employed.
- effective amount or therapeutically effective amount refers to that amount of a compound or combination of compounds as described herein that is sufficient to effect the intended application including, but not limited to, disease treatment.
- a therapeutically effective amount may vary depending upon the intended application ⁇ in vitro or in vivo ), or the subject and disease condition being treated ( e.g ., the weight, age and gender of the subject), the severity of the disease condition, the manner of administration, etc.
- the term also applies to a dose that will induce a particular response in target cells (e.g., increased sensitivity to apoptosis).
- the specific dose will vary depending on the particular compounds chosen, the dosing regimen to be followed, whether the compound is administered in combination with other compounds, timing of administration, the tissue to which it is administered, and the physical delivery system in which the compound is carried.
- A“therapeutic effect” as that term is used herein, encompasses a therapeutic benefit and/or a prophylactic benefit.
- a prophylactic effect includes delaying or eliminating the appearance of a disease or condition, delaying or eliminating the onset of symptoms of a disease or condition, slowing, halting, or reversing the progression of a disease or condition, or any combination thereof.
- the terms“QD,”“qd,” or“q.d.” mean quaque die , once a day, or once daily.
- the terms “BID,”“bid,” or“b.i.d.” mean bis in die , twice a day, or twice daily.
- the terms“TID,”“tid,” or “t.i.d.” mean ter in die , three times a day, or three times daily.
- the terms“QID,”“qid,” or “q.i.d.” mean quater in die , four times a day, or four times daily.
- salts refers to salts derived from a variety of organic and inorganic counter ions known in the art.
- Pharmaceutically acceptable acid addition salts can be formed with inorganic acids and organic acids.
- Preferred inorganic acids from which salts can be derived include, for example, hydrochloric acid, hydrobromic acid, sulfuric acid, nitric acid and phosphoric acid.
- Preferred organic acids from which salts can be derived include, for example, acetic acid, propionic acid, glycolic acid, pyruvic acid, oxalic acid, maleic acid, malonic acid, succinic acid, fumaric acid, tartaric acid, citric acid, benzoic acid, cinnamic acid, mandelic acid, methanesulfonic acid, ethanesulfonic acid, p-toluenesulfonic acid and salicylic acid.
- Pharmaceutically acceptable base addition salts can be formed with inorganic and organic bases.
- Inorganic bases from which salts can be derived include, for example, sodium, potassium, lithium, ammonium, calcium, magnesium, iron, zinc, copper, manganese and aluminum.
- Organic bases from which salts can be derived include, for example, primary, secondary, and tertiary amines, substituted amines including naturally occurring substituted amines, cyclic amines and basic ion exchange resins. Specific examples include isopropylamine, trimethylamine, diethylamine, triethylamine, tripropylamine, and ethanolamine.
- the pharmaceutically acceptable base addition salt is chosen from ammonium, potassium, sodium, calcium, and magnesium salts.
- cocrystal refers to a molecular complex derived from a number of cocrystal formers known in the art. Unlike a salt, a cocrystal typically does not involve hydrogen transfer between the cocrystal and the drug, and instead involves
- intermolecular interactions such as hydrogen bonding, aromatic ring stacking, or dispersive forces, between the cocrystal former and the drug in the crystal structure.
- “Pharmaceutically acceptable carrier” or“pharmaceutically acceptable excipient” is intended to include any and all solvents, dispersion media, coatings, antibacterial and antifungal agents, isotonic and absorption delaying agents, and inert ingredients.
- the use of such pharmaceutically acceptable carriers or pharmaceutically acceptable excipients for active pharmaceutical ingredients is well known in the art. Except insofar as any conventional pharmaceutically acceptable carrier or pharmaceutically acceptable excipient is incompatible with the active pharmaceutical ingredient, its use in the therapeutic compositions of the invention is contemplated. Additional active pharmaceutical ingredients, such as other drugs disclosed herein, can also be incorporated into the described compositions and methods.
- the terms“treat,”“treatment,” and/or“treating” may refer to the management of a disease, disorder, or pathological condition, or symptom thereof with the intent to cure, ameliorate, stabilize, and/or control the disease, disorder, pathological condition or symptom thereof.
- “control” may include the absence of condition progression, as assessed by the response to the methods recited herein, where such response may be complete (e.g., placing the disease in remission) or partial (e.g., lessening or ameliorating any symptoms associated with the condition).
- the terms“modulate” and“modulation” refer to a change in biological activity for a biological molecule (e.g., a protein, gene, peptide, antibody, and the like), where such change may relate to an increase in biological activity (e.g., increased activity, agonism, activation, expression, upregulation, and/or increased expression) or decrease in biological activity (e.g., decreased activity, antagonism, suppression, deactivation, downregulation, and/or decreased expression) for the biological molecule.
- a biological molecule e.g., a protein, gene, peptide, antibody, and the like
- an increase in biological activity e.g., increased activity, agonism, activation, expression, upregulation, and/or increased expression
- decrease in biological activity e.g., decreased activity, antagonism, suppression, deactivation, downregulation, and/or decreased expression
- the biological molecules modulated by the methods and compounds of the invention to effect treatment may include molecules in the Type 3 secretion system (T3SS), such as a T3SS needle protein (e.g., PscF) or a T3SS chaperone protein (e.g., PscE, PscG).
- T3SS Type 3 secretion system
- PscF T3SS needle protein
- PscE T3SS chaperone protein
- PscG T3SS chaperone protein
- “Inhibitors” are agents that inhibit a recited activity, function or entity.
- A”T3SS inhibitor” or“inhibitor of T3SS” is an agent which reduces the function or activity of a Type 3 secretion system (T3SS).
- T3SS inhibitor prevents or reduces T3SS- induced bacterial virulence in vitro.
- the T3SS inhibitor prevents or reduces T3SS-induced bacterial virulence in vivo.
- a T3SS inhibitor can be a compound which binds to a T3SS component and interfere with the binding of the T3SS component to other T3SS components (e.g., binding to the same T3SS protein to form homomultimers, or binding to a different T3SS protein to form heteromul timers).
- the compound can bind to a T3SS protein and interfere with its multimerization.
- the T3SS inhibitor competes for binding to a T3SS chaperone protein with a T3SS needle protein.
- the T3SS inhibitors are provided in a composition also comprising a sterile carrier and/or physiologically acceptable carrier.
- prodrug refers to a derivative of a compound described herein, the pharmacologic action of which results from the conversion by chemical or metabolic processes in vivo to the active compound.
- Prodrugs include compounds wherein an amino acid residue, or a polypeptide chain of two or more (e.g., two, three or four) amino acid residues is covalently joined through an amide or ester bond to a free amino, hydroxyl or carboxylic acid group of a tanshinone compound (e.g., tanshinone 1 (TSN1)) or tanshinone analog (e.g., dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)).
- TSN1 tanshinone 1
- dHTSNl dihydrotanshinone 1
- dHTSN dihydrotanshinone
- the amino acid residues include but are not limited to the 20 naturally occurring amino acids commonly designated by one or three letter symbols but also include, for example, 4-hydroxyproline, hydroxylysine, desmosine, isodesmosine, 3- methylhistidine, beta-alanine, gamma-aminobutyric acid, citrulline, homocysteine, homoserine, ornithine and methionine sulfone. Additional types of prodrugs are also encompassed. For instance, free carboxyl groups can be derivatized as amides or alkyl esters (e.g., methyl esters and acetoxy methyl esters).
- Prodrug esters as employed herein includes esters and carbonates formed by reacting one or more hydroxyls of compounds of the method of the invention with alkyl, alkoxy, or aryl substituted acylating agents employing procedures known to those skilled in the art to generate acetates, pivalates, methylcarbonates, benzoates and the like.
- free hydroxyl groups may be derivatized using groups including but not limited to hemisuccinates, phosphate esters, dimethylaminoacetates, and
- phosphoryloxymethyloxy carbonyls as outlined in Advanced Drug Delivery Reviews, 1996, 19, 115.
- Carbamate prodrugs of hydroxyl and amino groups are also included, as are carbonate prodrugs, sulfonate prodrugs, sulfonate esters and sulfate esters of hydroxyl groups.
- Free amines can also be derivatized to amides, sulfonamides or phosphonamides. All of the stated prodrug moieties may incorporate groups including but not limited to ether, amine and carboxylic acid functionalities.
- any compound that can be converted in vivo to provide the bioactive agent e.g., a tanshinone compound such as tanshinone 1 (TSN1), or tanshinone analog such as dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)
- a prodrug within the scope of the invention.
- tanshinone compound such as tanshinone 1 (TSN1)
- tanshinone analog such as dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)
- prodrugs may be designed to improve the penetration of a drug across biological membranes in order to obtain improved drug absorption, to prolong duration of action of a drug (slow release of the parent drug from a prodrug, decreased first-pass metabolism of the drug), to target the drug action, to modify or improve aqueous solubility of a drug (e.g., i.v. preparations and eyedrops), to improve topical drug delivery (e.g. dermal and ocular drug delivery), to improve the chemical/enzymatic stability of a drug, or to decrease off-target drug effects, and more generally in order to improve the therapeutic efficacy of the compounds utilized in the invention.
- ranges are used herein to describe, for example, physical or chemical properties such as molecular weight or chemical formulae, all combinations and subcombinations of ranges and specific embodiments therein are intended to be included.
- Use of the term“about” when referring to a number or a numerical range means that the number or numerical range referred to is an approximation within experimental variability (or within statistical experimental error), and thus the number or numerical range may vary. The variation is typically from 0% to 15%, preferably from 0% to 10%, more preferably from 0% to 5% of the stated number or numerical range.
- the term“about” means that dimensions, sizes, formulations, parameters, shapes and other quantities and characteristics are not and need not be exact, but may be approximate and/or larger or smaller, as desired, reflecting tolerances, conversion factors, rounding off, measurement error and the like, and other factors known to those of skill in the art.
- a dimension, size, formulation, parameter, shape or other quantity or characteristic is“about” or“approximate” whether or not expressly stated to be such. It is noted that embodiments of very different sizes, shapes and dimensions may employ the described arrangements.
- transitional terms“comprising”,“consisting essentially of’ and “consisting of’ when used in the appended claims, in original and amended form, define the claim scope with respect to what unrecited additional claim elements or steps, if any, are excluded from the scope of the claim(s).
- the term“comprising” is intended to be inclusive or open-ended and does not exclude any additional, unrecited element, method, step or material.
- the T3SS found as cell-surface appendages, comprises ⁇ 30 bacterial proteins 7 9 , which are classified into structural, effector and chaperon proteins whose respective functions are largely conserved across different bacterial species.
- the structural proteins of the T3SS polymerize into a membrane-anchored, needle-like assembly known as“the needle complex,” through which the effector proteins are injected from the bacterial cytoplasm into host cells to promote infection. Since the structural proteins are often hydrophobic and prone to aggregation on their own, they are bound and protected, prior to their high-order assembly on the bacterial membrane, by the chaperone proteins in the cytosol to prevent premature aggregation and degradation.
- Pseudomonas aeruginosa is a resistance-prone, Gram -negative pathogen often found in the intensive care unit of a hospital. It causes life-threatening nosocomial infections such as pneumonia in immune-compromised patients, and poses a major risk of pulmonary deterioration to patients with chronic cystic fibrosis 10 .
- virulence factors secreted via the T3SS promote pathogenicity of Pseudomonas aeruginosa in vitro and in vivo , which correlates to poor clinical outcomes in Pseudomonas- infected patients.
- the invention includes compounds that are inhibitors of Type 3 Secretion System (T3SS). In an embodiment, the invention includes compounds that are inhibitors of the biogenesis or assembly of the T3SS needle.
- T3SS Type 3 Secretion System
- T3SS Type 3 Secretion System
- polarization-based assay for high-throughput screening as a mechanistically well-defined general strategy for antibiotic discovery targeting the T3SS, and a serendipitous discovery of a subset of tanshinones - natural herbal compounds in traditional Chinese medicine widely used for the treatment of cardiovascular and cerebrovascular diseases - as effective inhibitors of the biogenesis of the T3SS needle of multidrug-resistant Pseudomonas aeruginosa.
- tanshinones may be used directly to alleviate Pseudomonas aeruginosa- associated pulmonary infections without inducing antibiotic resistance. Since the T3SS is highly conserved among Gram-negative bacteria, this anti-virulence strategy may be applicable to the discovery and development of novel classes of antibiotics refractory to existing resistance mechanisms for the treatment of many bacterial infections.
- the compounds described herein may inhibit T3SS needle assembly. In some embodiments, the compounds described herein may reduce secretion of bacterial virulence factors. In some other embodiments, the compounds described herein reduce cytotoxicitiy and/or pathogencity of a bacteria. In some embodiments, the compounds described herein inhibit biogenesis of a T3SS needle and reduce secretion of bacterial virulence factors. In some embodiments, the compounds described herein may be delivered as a listed or as a pharmaceutically acceptable salt, solvate, hydrate, cocrystal, tautomer, or prodrug thereof
- Tanshinones are a class of lipophilic phenanthrene compounds that are rich in the roots of S. miltiorrhiza. (Jiang et al., 2019, Frontiers in Pharmacology, Vol. 10, Article 202, rr.1-14).
- the compounds possess an ortho- or fluorene structure and can be reduced to a diphenol derivative, which is converted to hydrazine after oxidation.
- tanshinones and tanshinone analogs include, without limitation, tanshinone I, formyltanshinone, tanshinone IIA, hydroxytanshinone IIA, 3- hydroxytanshinone IIA, tanshinone IIB, methyl tanshinonate, tanshinaldehyde,
- dihydrotanshinone I cryptotanshinone, methyl dihydronortanshinonate
- isotanshinone IIA isotanshinone IIB
- tanshindiol-A isotanshinone IIA
- miltirone 4-methylenemiltirone
- trijuganone A trijuganone B
- danshenxinkun A danshenxinkun B
- denshenxinkun C denshenxinkun D
- tanshinol A, tanshinol B sugiol, ferruginol
- sibiriquinone A sibiriquinone B
- neocryptotanshinone methyl dihydronortanshinonate, methylenetanshinquinone, 3- hydroxymethylenetanshinquinone, digwaquinone A, calciumwaquinone C, 1,2- dihydrotanshinquinone, tetrahydrotanshinone, l5,l6-dihydrotanshinone I, 1,2,15,16- tetrahydrotanshiquinone, dihydronortanshinone, nortanshionone, and dihydroisotanshinone II (FIGS. 26A-26B).
- the tanshinone or tanshinone analog is tanshinone I:
- the tanshinone or tanshinone analog is dihydrotanshinone 1 (dHTSNl):
- tanshinone or tanshinone analog dihydrotanshinone (dHTSN):
- the compounds and compositions described herein can be used in methods for treating diseases.
- the compounds and compositions described herein can be used in methods for treating diseases associated with the Type 3 Secretion System (T3SS).
- T3SS Type 3 Secretion System
- the compounds and compositions described herein can be used for the treatment of bacterial infections, including infections caused by and/or associated with Gram-negative bacteria.
- the compounds and compositions described herein may also be used in treating disorders as described herein and in the following paragraphs.
- a method of treating or preventing a bacterial infection in a subject in need thereof is provided.
- a method of reducing virulence of a bacteria in a subject is provided.
- a method of reducing pathogenicity and/or cytoxicity of a bacteria in a subject is provided.
- a method of reducing or preventing development of drug resistance in a bacteria is provided.
- the subject is an animal.
- the subject is a human.
- a method of treating or preventing a bacterial infection in a subject in need thereof comprising administering to the subject a therapeutically effective amount of an inhibitor of Type 3 Secretion System (T3SS).
- T3SS Type 3 Secretion System
- a method of treating or preventing a bacterial infection in a subject in need thereof comprising administering to the subject a therapeutically effective amount of an agent identified as an inhibitor of Type 3 Secretion System (T3SS) according to the methods of identifying T3SS inhibitors as described herein.
- a method of inhibiting treating or preventing a bacterial infection in a subject in need thereof comprising administering to the subject a therapeutically effective amount of an inhibitor of Type 3 Secretion System (T3SS), wherein the inhibitor of T3SS blocks interaction between a T3SS needle protein and a T3SS chaperone protein.
- T3SS Type 3 Secretion System
- the bacterial infection is Gram-negative bacterial infection.
- the inhibitor of T3SS is selected from the group consisting of a tanshinone, tanshinone analog, and the pharmaceutically acceptable salts, solvates, hydrates, cocrystals, or prodrugs thereof.
- the tanshinone is tanshinone 1 (TSN1).
- the tanshinone analog is dihydrotanshinone 1 (dHTSNl) or
- dHTSN dihydrotanshinone
- an infection is caused by and/or associated with a bacteria.
- the bacterium is a gram-positive bacteria.
- the gram-positive bacterium is selected from the group consisting of
- the gram-positive bacterium is selected from the group consisting of Propionibacterium acnes, Staphylococcus aureus , Staphylococcus epidermidis, Staphylococcus saprophyticus ,
- Staphylococcus haemolyticus Streptococcus pyogenes , Streptococcus agalactiae , Streptococcus pneumoniae , Enterococcus faecal is, Enterococcus faecium , Actinomyces israelii , Bacillus anthracis , Corynebacterium diphtheria , Clostridium perfringens , Clostridium botulinum , Clostridium tetani , and Clostridium difficile.
- the gram positive bacterium is selected from the group consisting of Staphylococcus aureus,
- the bacterium is a gram-negative bacterium.
- the gram-negative bacterium is selected from the group consisting of Acinetobacter species, Neisseria species, Pseudomonas species, Brucella species, Agrobacterium species, Bordetella species, Escherichia species, Shigelia species, Yersinia species, Salmonella species, Klebsiella species, Enterobacter species, Haemophilus species, Pasteurella species,
- Streptobacillus species Streptobacillus species, spirochetal species, Campylobacter species, Vibrio species, Helicobacter species, Bacteroides species, Citrobacter species, Proteus species, Providencia species, Serratia species, Stenotrophomonas species and Burkholderia species.
- Streptobacillus species spirochetal species, Campylobacter species, Vibrio species, Helicobacter species, Bacteroides species, Citrobacter species, Proteus species, Providencia species, Serratia species, Stenotrophomonas species and Burkholderia species.
- the gram-negative bacterium is selected from the group consisting of Acinetobacter species, Pseudomonas species, Escherichia species, Klebsiella species, Enterobacter species, Bacteroides species, Citrobacter species, Proteus species, Providencia species, Serratia species, Stenotrophomonas species and Burkholderia species.
- the gram-negative bacterium is selected from the group consisting of Neisseria gonorrhoeae, Neisseria meningitidis , Pseudomonas aeruginosa , Legionella pneumophila , Escherichia coli , Yersinia pestis, Haemophilus influenzae , Helicobacter pylori , Campylobacter fetus ,
- Campylobacter jejuni Vibrio cholerae , Vibrio parahemolyticus , Trepomena pallidum , Rickettsia prowazekii , Rickettsia rickettsii , Chlamydia trachomatis , Chlamydia psittaci , Brucella abortus , Agrobacterium tumefaciens , Francisella tularensis , Klebsiella pneumoniae, Enterobacter cloacae, Acinetobacter baumannii, Bacteroides fragilis, Citrobacter freundii, Proteus mirabilis, Providencia stuartii, Serratia marcescens, Stenotrophomonas maltophilia and Burkholderia cepacia.
- the gram-negative bacterium is selected from the group consisting of Pseudomonas aeruginosa , Escherichia coli , Haemophilus influenzae, Klebsiella pneumoniae, Enterobacter cloacae, Acinetobacter baumannii, Bacteroides fragilis, Citrobacter freundii, Proteus mirabilis, Providencia stuartii, Serratia marcescens,
- the gram-negative bacterium is selected from the group consisting of Enterobacter aerogenes, Enterobacter cloacae, Enterobacter sakazakii, Escherichia coli , Klebsiella pneumoniae, Proteus mirabilis, Serratia marcescens and Citrobacter freundii.
- the gram-negative bacterium is Providencia spp.
- the bacteria is an acid-fast bacteria.
- the bacterium is a Mycobacterium spp.
- the bacterium is Mycobacterium avium.
- the bacterium is Mycobacterium avium-intracellulare .
- the bacterium is Mycobacterium kansasii.
- the bacterium i s Mycobacterium leprae.
- the bacterium is Mycobacterium lepromatosis .
- the bacterium is Mycobacterium africanum.
- the bacterium is Mycobacterium canetti.
- the bacterium is Mycobacterium microti. In another exemplary embodiment, the bacterium is Mycobacterium tuberculosis. In another exemplary embodiment, the bacterium is Mycobacterium tuberculosis which is multi-drug resistant. In another exemplary embodiment, the bacterium is Mycobacterium tuberculosis which is extensively drug resistant. In another exemplary embodiment, the bacterium is Mycobacterium tuberculosis which is resistant to rifampicin. In another exemplary embodiment, the bacterium is Mycobacterium tuberculosis which is resistant to isoniazid. In another exemplary embodiment, the bacterium is
- Mycobacterium tuberculosis which is resistant to kanamycin.
- Mycobacterium tuberculosis which is resistant to kanamycin.
- the bacterium is Mycobacterium tuberculosis which is resistant to capreomycin. In another exemplary embodiment, the bacterium is Mycobacterium tuberculosis which is resistant to amikacin.
- the bacterium is a Pseudomonas species. In another exemplary embodiment, the bacterium is Pseudomonas aeruginosa. In another exemplary embodiment, the bacterium is selected from the group consisting of Pseudomonas aeruginosa , Acinetobacter baumannii, Stenotrophomonas maltophilia and Burkholderia cepacia. In another exemplary embodiment, the bacterium is Acinetobacter baumannii. In another exemplary embodiment, the bacterium is Stenotrophomonas maltophilia. In another exemplary embodiment,
- the bacterium is Burkholderia cepacia. In another exemplary embodiment, the bacterium is Acinetobacter species. In another exemplary embodiment, the bacterium is Acinetobacter anitratus. In another exemplary embodiment, the bacterium is selected from the group consisting of Enterobacter aerogenes, Enterobacter cloacae , Enterobacter sakazakii , E. coli, K. pneumoniae, P. mirabilis, Serratia marcescens, Citrobacter freundii and Providencia spp. In another exemplary embodiment, the bacterium is selected from the group consisting of Enterobacter aerogenes , Enterobacter cloacae , Enterobacter sakazakii , E. coli, K. pneumoniae, P. mirabilis, Serratia marcescens, Citrobacter freundii, Providencia spp., S. aureus, S.
- the bacterium is selected from the group consisting of Pseudomonas aeruginosa , Acinetobacter baumannii, Stenotrophomonas maltophilia, Burkholderia cepacia.
- the bacterium is selected from the group consisting of S. aureus, S. pneumonia, S. pyogenes, E.faecalis, and E.faecium.
- the bacterium is selected from the group consisting of Viridans group Strep.
- the bacterium is selected from the group consisting of Strep mitis, Strep mutans, Strep oralis, Strep sanguis, Strep sobrinus and Strep millari.
- the bacterium is S. pneumonia. In another exemplary embodiment, the bacterium is H. influenzae. In another exemplary embodiment, the bacterium is S. aureus. In another exemplary embodiment, the bacterium isM catarrhalis. In another exemplary embodiment, the bacterium is M. pneumoniae. In another exemplary embodiment, the bacterium is L. pneumoniae. In another exemplary embodiment, the bacterium is C.
- the bacterium is S. pyogenes. In another exemplary embodiment, the bacterium is an anaerobe. In another exemplary embodiment, the bacterium is an Alcaligenes species. In another exemplary embodiment, the bacterium is a B. cepacia. In another exemplary embodiment, the bacterium is selected from the group consisting of Enterobacter cloacae, Escherichia coli , Klebsiella pneumoniae, Proteus mirabilis,
- the bacterium is resistant to methicillin.
- the bacterium is methicillin-resistant Staphylococcus aureus.
- the bacterium is selected from the group consisting of Streptococcus pneumoniae , Haemophilus influenzae , Staphylococcus aureus , Mycobacterium catarrhalis, Mycobacterium pneumoniae, Legionella pneumophila and Chlamydia pneumoniae.
- the bacterium is selected from the group consisting of Enterobacter cloacae, Escherichia coli , Klebsiella pneumoniae, Proteus mirabilis, Serratia marcescens, Citrobacter freundii,
- the bacterium is selected from the group consisting of Staphylococcus aureus , Staphylococcus epidermidis, Staphylococcus haemolyticus , Streptococcus pyogenes , Streptococcus agalactiae and Streptococcus pneumoniae. In one embodiment, the bacterium is Pseudomonas aeruginosa.
- the bacterium is selected from the group consisting of bacilli, including Bacillus species, Corynebacterium species (also Propionibacterium) and Clostridium species; filamentous bacteria, including Actinomyces species and Streptomyces species; bacilli, such as Pseudomonas species, Brucella species, Agrobacterium species, Bordetella species, Escherichia species, Shigella species, Yersinia species, Salmonella species, Klebsiella species, Enterobacter species, Haemophilus species, Pasteurella species, and
- the invention provides a method of treating and/or preventing a disease.
- the method includes administering to the subject a therapeutically effective amount of a compound of the invention, thereby treating and/or preventing the disease.
- the compound of the invention can be used in human or veterinary medical therapy, particularly in the treatment or prophylaxis of bacterial-associated disease.
- the compound is described herein, or a salt, prodrug, hydrate or solvate thereof, or a combination thereof.
- the invention provides a compound described herein, or a prodrug thereof.
- the invention provides a compound described herein, or a salt, hydrate or solvate thereof.
- the invention provides a compound described herein, or a salt thereof.
- the compound of the invention is a compound described herein, or a pharmaceutically acceptable salt thereof.
- the compound is a compound described herein, or a pharmaceutically acceptable salt thereof.
- the compound is according to a formula described herein, or a pharmaceutically acceptable salt thereof.
- the compound is part of a combination described herein.
- the compound is part of a pharmaceutical formulation described herein.
- the disease is a systemic disease.
- the disease is a topical disease.
- the subject is being administered the compound is not otherwise in need of treatment with the compound.
- the disease is treated through oral administration of a compound of the invention.
- the disease is treated through intravenous administration of a compound of the invention.
- the disease is treated through subcutaneous administration of a compound of the invention and/or a combination of the invention.
- the invention provides a method of treating a systemic disease.
- the method involves contacting an animal with a compound of the invention and/or a combination of the invention.
- the disease is associated with a bacteria described herein. In another exemplary embodiment, the disease is associated with infection by a Gram positive bacteria. In an exemplary embodiment, the disease is associated with a Staphylococcus species. In another exemplary embodiment, the disease is selected from the group consisting of pneumonia, gastroenteritis, toxic shock syndrome, community acquired pneumonia (CAP), meningitis, septic arthritis, urinary tract infection, bacteremia, endocarditis, osteomylitis, skin and skin-structure infection. In an exemplary embodiment, the disease is associated with a Streptococcus species.
- CAP community acquired pneumonia
- the disease is selected from the group consisting of strep throat, skin infections, necrotizing fasciitis, toxic shock syndrome, pneumonia, otitis media and sinusitis.
- the disease is associated with an Actinomyces species.
- the disease is actinomycosis.
- the disease is associated with a Norcardia species. In another exemplary embodiment, the disease is pneumonia. In one exemplary embodiment, the disease is acute pneumonia. In an exemplary embodiment, the disease is associated with a
- the disease is diphtheria. In an exemplary embodiment, the disease is associated with a Listeria species. In another exemplary embodiment, the disease is meningitis. In an exemplary embodiment, the disease is associated with & Bacillus species. In another exemplary embodiment, the disease is anthrax or food poisoning. In an exemplary embodiment, the disease is associated with a Clostridium species.
- the disease is selected from the group consisting of botulism, tetanus, gas gangrene and diarrhea.
- the disease is associated with Mycobacterium species. In an exemplary embodiment, the disease is associated with Mycobacterium tuberculosis. In an exemplary embodiment, the disease is associated with Mycobacterium kansasii. In an exemplary embodiment, the disease is associated with Mycobacterium avium-intracellular e . In another exemplary embodiment, the disease is leprosy. In another exemplary embodiment, the disease is tuberculosis. In another exemplary embodiment, the disease is pulmonary tuberculosis. In another exemplary embodiment, the disease is extrapulmonary tuberculosis. In another exemplary embodiment, the disease is associated with multi-drug resistant tuberculosis. In another exemplary embodiment, the disease is associated with extensively drug resistant tuberculosis.
- the disease is associated with infection by a Gram negative bacteria.
- the disease is associated with a Neisseria species.
- the disease is selected from the group consisting of meningitis, gonorrhea, otitis externa and folliculitis.
- the disease is associated with an Escherichia species.
- the disease is selected from the group consisting of diarrhea, urinary tract infections, meningitis, sepsis and HAP.
- the disease is associated with a Shigella species.
- the disease is selected from the group consisting of diarrhea, bacteremia, endocarditis, meningitis and gastroenteritis.
- the disease is associated with a Salmonella species.
- the disease is selected from the group consisting of Typhoid fever, sepsis, gastroenteritis, endocarditis, sinusitis and meningitis.
- the disease is associated with a Yersinia species.
- the disease is selected from the group consisting of Typhoid fever, bubonic plague, enteric fever and gastroenteritis.
- the disease is associated with a Klebsiella species.
- the disease is sepsis or urinary tract infection.
- the disease is associated with a Proteus species.
- the disease is an urinary tract infection.
- the disease is associated with an Enterobacter species.
- the disease is a hospital-acquired infection.
- the disease is associated with a Serratia species.
- the disease is selected from the group consisting of a urinary tract infection, skin and skin-structure infection and pneumonia.
- the disease is associated with a Vibrio species.
- the disease is cholera or gastroenteritis.
- the disease is associated with a Campylobacter species. In another exemplary embodiment, the disease is gastroenteritis. In an exemplary embodiment, the disease is associated with a Helicobacter species. In another exemplary embodiment, the disease is chronic gastritis. In an exemplary embodiment, the disease is associated with a Pseudomonas species. In another exemplary embodiment, the disease is selected from the group consisting of pneumonia, osteomylitis, bum-wound infections, sepsis, UTIs, endocarditis, otitis and corneal infections. In an exemplary embodiment, the disease is associated with a Bacteroides species. In another exemplary embodiment, the disease is periodontal disease or aspiration pneumonia.
- the disease is associated with a Haemophilus species.
- the disease is selected from the group consisting of meningitis, epiglottitis, septic arthritis, sepsis, chancroid and vaginitis.
- the disease is associated with a Bordetella species.
- the disease is Whooping cough. In an exemplary embodiment
- the disease is associated with a Legionella species.
- the disease is pneumonia or pontiac fever.
- the disease is associated with a Francisella species.
- the disease is tularemia.
- the disease is associated with a Brucella species.
- the disease is brucellosis.
- the disease is associated with a Pasteurella species.
- the disease is a skin infection.
- the disease is associated with a Gardnerella species.
- the disease is vaginitis.
- the disease is associated with a Spirochetes species. In another exemplary embodiment, the disease is syphilis or Lyme disease. In an exemplary embodiment, the disease is associated with a Chlamydia species. In another exemplary embodiment, the disease is chlamydia. In an exemplary embodiment, the disease is associated with a Rickettsiae species. In another exemplary embodiment, the disease is Rocky Mountain spotted fever or typhus.
- the disease is associated with Mycoplasma pneumoniae. In another exemplary embodiment, the disease is tracheobronchitis or walking pneumonia. In an exemplary embodiment, the disease is associated with Ureaplasma urealyticum. In another exemplary embodiment, the disease is urethritis. In another exemplary embodiment, the disease is pyelonephritis. In another exemplary embodiment, the disease is an intra-abdominal infection. In another exemplary embodiment, the disease is febrile neutropenia. In another exemplary embodiment, the disease is a pelvic infection. In another exemplary embodiment, the disease is bacteraemia. In another exemplary embodiment, the disease is septicaemia.
- the disease is an acute exacerbation of chronic obstructive pulmonary disease.
- the disease is chronic obstructive pulmonary disease.
- the disease is pharyngitis.
- the disease is tonsillitis.
- the disease is Acute Exacerbation of Chronic Bronchitis (AECB).
- AECB Acute Exacerbation of Chronic Bronchitis
- the disease is cervicitis.
- the disease is genital ulcer disease.
- the disease is a Gram-negative bacterial infection.
- the Gram-negative bacteria is Pseudomonas.
- the Gram-negative bacteria is Pseudomonas aeruginosa.
- the Gram-negative bacterial infection is pneumonia. In an exemplary embodiment, the Gram-negative bacterial infection is acute pneumonia.
- the subject is an animal.
- the animal is selected from the group consisting of human, cattle, deer, reindeer, goat, honey bee, pig, sheep, horse, cow, bull, dog, guinea pig, gerbil, rabbit, cat, camel, yak, elephant, ostrich, otter, chicken, duck, goose, guinea fowl, pigeon, swan, and turkey.
- the animal is selected from the group consisting of a human, cattle, goat, pig, sheep, horse, cow, bull, dog, guinea pig, gerbil, rabbit, cat, chicken and turkey.
- the subject or the animal is a human.
- a compound described herein or a pharmaceutically acceptable salt thereof, and/or a pharmaceutical formulation described herein can be used.
- the compound is a tanshinone or tanshinone analog.
- the compound is a compound identified by the screening methods as described herein.
- the invention provides a pharmaceutical composition for use in the treatment of the diseases and conditions described herein.
- a pharmaceutical composition for the treatment or prevention of a bacterial infection in a subject in need thereof comprising an inhibitor of Type 3 Secretion System (T3SS).
- T3SS inhibitor is tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl), or dihydrotanshinone (dHTSN).
- a pharmaceutical composition for the treatment or prevention of a bacterial infection in a subject in need thereof comprising an inhibitor of Type 3 Secretion System (T3SS), and a pharmaceutically acceptable carrier, wherein the inhibitor of T3SS blocks interaction between a T3SS needle protein and a T3SS chaperone protein.
- T3SS Type 3 Secretion System
- a pharmaceutical composition for the treatment or prevention of a bacterial infection in a subject in need thereof is provided, the composition comprising an agent identified as an inhibitor of Type 3 Secretion System (T3SS) according to the methods of identifying T3SS inhibitors describe herein, and a pharmaceutically acceptable carrier.
- the bacterial infection is a Gram-negative bacterial infection.
- a pharmaceutical composition for the treatment of a Gram negative bacterial infection in a subject in need thereof comprising an inhibitor of Type 3 Secretion System (T3SS) selected from the group consisting of tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl), dihydrotanshinone (dHTSN), and the pharmaceutically acceptable salts, solvates, hydrates, cocrystals, or prodrugs thereof; and a pharmaceutically acceptable carrier.
- T3SS Type 3 Secretion System
- the pharmaceutical compositions are typically formulated to provide a therapeutically effective amount of a compound, as described herein, or a pharmaceutically acceptable salt, solvate, or hydrate thereof, as the active ingredient.
- the pharmaceutical compositions also comprise one or more pharmaceutically acceptable excipients, carriers, including inert solid diluents and fillers, diluents, including sterile aqueous solution and various organic solvents, permeation enhancers, solubilizers and adjuvants.
- compositions described above are preferably for use in the treatment of bacterial infection.
- the concentration of a compound described herein is less than, for example, 100%, 90%, 80%, 70%, 60%, 50%, 40%, 30%, 20%, 19%, 18%, 17%, 16%, 15%, 14%, 13%, 12%, 11%, 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5%, 0.4%, 0.3%, 0.2%, 0.1%, 0.09%, 0.08%, 0.07%, 0.06%, 0.05%, 0.04%, 0.03%, 0.02%, 0.01%, 0.009%, 0.008%, 0.007%, 0.006%, 0.005%, 0.004%, 0.003%, 0.002%, 0.001%, 0.0009%, 0.0008%, 0.0007%, 0.0006%, 0.0005%, 0.0004%, 0.0003%, 0.0002% or
- the concentration of a compound as described herein or pharmaceutically acceptable salt thereof provided in the pharmaceutical compositions of the invention is independently greater than 90%, 80%, 70%, 60%, 50%, 40%, 30%, 20%, 19.75%, 19.50%, 19.25% 19%, 18.75%, 18.50%, 18.25% 18%, 17.75%, 17.50%, 17.25% 17%, 16.75%,
- the concentration of a compound as described herein or pharmaceutically acceptable salt thereof, provided in the pharmaceutical compositions of the invention is in the range from about 0.0001% to about 50%, about 0.001% to about 40%, about 0.01% to about 30%, about 0.02% to about 29%, about 0.03% to about 28%, about 0.04% to about 27%, about 0.05% to about 26%, about 0.06% to about 25%, about 0.07% to about 24%, about 0.08% to about 23%, about 0.09% to about 22%, about 0.1% to about 21%, about 0.2% to about 20%, about 0.3% to about 19%, about 0.4% to about 18%, about 0.5% to about 17%, about 0.6% to about 16%, about 0.7% to about 15%, about 0.8% to about 14%, about 0.9% to about 12% or about 1% to about 10% w/w, w/v or v/v of the pharmaceutical composition.
- the concentration of a compound as described herein or pharmaceutically acceptable salt thereof, provided in the pharmaceutical compositions of the invention is in the range from about 0.001% to about 10%, about 0.01% to about 5%, about 0.02% to about 4.5%, about 0.03% to about 4%, about 0.04% to about 3.5%, about 0.05% to about 3%, about 0.06% to about 2.5%, about 0.07% to about 2%, about 0.08% to about 1.5%, about 0.09% to about 1%, about 0.1% to about 0.9% w/w, w/v or v/v of the pharmaceutical composition.
- the amount of a compound described herein (e.g., T3SS inhibitors, including tanshinone and tanshinone analogs), or pharmaceutically acceptable salt thereof, provided in the pharmaceutical compositions of the invention is equal to or less than 10 g, 9.5 g, 9.0 g, 8.5 g, 8.0 g, 7.5 g, 7.0 g, 6.5 g, 6.0 g, 5.5 g, 5.0 g, 4.5 g, 4.0 g, 3.5 g, 3.0 g, 2.5 g, 2.0 g, 1.5 g, 1.0 g, 0.95 g, 0.9 g, 0.85 g, 0.8 g, 0.75 g, 0.7 g, 0.65 g, 0.6 g, 0.55 g, 0.5 g, 0.45 g, 0.4 g, 0.35 g, 0.3 g, 0.25 g, 0.2 g, 0.15 g, 0.1 g, 0.09 g, 0.08
- the amount of: a compound described herein (e.g., T3SS inhibitors, including tanshinone and tanshinone analogs), or pharmaceutically acceptable salt thereof, provided in the pharmaceutical compositions of the invention is more than 0.0001 g, 0.0002 g, 0.0003 g, 0.0004 g, 0.0005 g, 0.0006 g, 0.0007 g, 0.0008 g, 0.0009 g, 0.001 g, 0.0015 g, 0.002 g, 0.0025 g, 0.003 g, 0.0035 g, 0.004 g, 0.0045 g, 0.005 g, 0.0055 g, 0.006 g, 0.0065 g,
- Each of the compounds provided according to the invention is effective over a wide dosage range.
- dosages independently ranging from 0.01 to 1000 mg, from 0.5 to 100 mg, from 1 to 50 mg per day, and from 5 to 40 mg per day are examples of dosages that may be used.
- the exact dosage will depend upon the route of administration, the form in which the compound is administered, the gender and age of the subject to be treated, the body weight of the subject to be treated, and the preference and experience of the attending physician.
- compositions for Oral Administration are provided.
- the invention provides a pharmaceutical composition for oral administration containing: a compound described herein (e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)), or pharmaceutically acceptable salt thereof, described herein, and a pharmaceutical excipient suitable for administration.
- a compound described herein e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)
- TSN1 tanshinone 1
- dHTSNl dihydrotanshinone
- the invention provides a solid pharmaceutical composition for oral administration containing: (i) an effective amount of: a tanshinone or tanshinone analog, or pharmaceutically acceptable salt thereof, and (ii) a pharmaceutical excipient suitable for administration.
- the composition further contains (iii) an effective amount of an additional active pharmaceutical ingredient.
- additional active pharmaceutical ingredients may include one or more compounds that kill a bacteria.
- the pharmaceutical composition may be a liquid pharmaceutical composition suitable for oral consumption.
- compositions of the invention suitable for oral administration can be presented as discrete dosage forms, such as capsules, sachets, or tablets, or liquids or aerosol sprays each containing a predetermined amount of an active ingredient as a powder or in granules, a solution, or a suspension in an aqueous or non-aqueous liquid, an oil-in-water emulsion, a water-in-oil liquid emulsion, powders for reconstitution, powders for oral consumptions, bottles (including powders or liquids in a bottle), orally dissolving films, lozenges, pastes, tubes, gums, and packs.
- discrete dosage forms such as capsules, sachets, or tablets, or liquids or aerosol sprays each containing a predetermined amount of an active ingredient as a powder or in granules, a solution, or a suspension in an aqueous or non-aqueous liquid, an oil-in-water emulsion, a water-in-oil liquid
- Such dosage forms can be prepared by any of the methods of pharmacy, but all methods include the step of bringing the active ingredient(s) into association with the carrier, which constitutes one or more necessary ingredients.
- the compositions are prepared by uniformly and intimately admixing the active ingredient(s) with liquid carriers or finely divided solid carriers or both, and then, if necessary, shaping the product into the desired presentation.
- a tablet can be prepared by compression or molding, optionally with one or more accessory ingredients.
- Compressed tablets can be prepared by compressing in a suitable machine the active ingredient in a free-flowing form such as powder or granules, optionally mixed with an excipient such as, but not limited to, a binder, a lubricant, an inert diluent, and/or a surface active or dispersing agent. Molded tablets can be made by molding in a suitable machine a mixture of the powdered compound moistened with an inert liquid diluent.
- the invention further encompasses anhydrous pharmaceutical compositions and dosage forms since water can facilitate the degradation of some compounds.
- water may be added ( e.g ., 5%) in the pharmaceutical arts as a means of simulating long-term storage in order to determine characteristics such as shelf-life or the stability of formulations over time.
- Anhydrous pharmaceutical compositions and dosage forms of the invention can be prepared using anhydrous or low moisture containing ingredients and low moisture or low humidity conditions.
- Pharmaceutical compositions and dosage forms of the invention which contain lactose can be made anhydrous if substantial contact with moisture and/or humidity during manufacturing, packaging, and/or storage is expected.
- An anhydrous pharmaceutical composition may be prepared and stored such that its anhydrous nature is maintained.
- anhydrous compositions may be packaged using materials known to prevent exposure to water such that they can be included in suitable formulary kits.
- suitable packaging include, but are not limited to, hermetically sealed foils, plastic or the like, unit dose containers, blister packs, and strip packs.
- Active pharmaceutical ingredients can be combined in an intimate admixture with a pharmaceutical carrier according to conventional pharmaceutical compounding techniques.
- the carrier can take a wide variety of forms depending on the form of preparation desired for administration.
- any of the usual pharmaceutical media can be employed as carriers, such as, for example, water, glycols, oils, alcohols, flavoring agents, preservatives, coloring agents, and the like in the case of oral liquid preparations (such as suspensions, solutions, and elixirs) or aerosols; or carriers such as starches, sugars, micro-crystalline cellulose, diluents, granulating agents, lubricants, binders, and disintegrating agents can be used in the case of oral solid preparations, in some embodiments without employing the use of lactose.
- suitable carriers include powders, capsules, and tablets, with the solid oral preparations. If desired, tablets can be coated by standard aqueous or nonaqueous techniques.
- Binders suitable for use in pharmaceutical compositions and dosage forms include, but are not limited to, corn starch, potato starch, or other starches, gelatin, natural and synthetic gums such as acacia, sodium alginate, alginic acid, other alginates, powdered tragacanth, guar gum, cellulose and its derivatives ( e.g ., ethyl cellulose, cellulose acetate, carboxymethyl cellulose calcium, sodium carboxymethyl cellulose), polyvinyl pyrrolidone, methyl cellulose, pre- gelatinized starch, hydroxypropyl methyl cellulose, microcrystalline cellulose, and mixtures thereof.
- natural and synthetic gums such as acacia, sodium alginate, alginic acid, other alginates, powdered tragacanth, guar gum, cellulose and its derivatives ( e.g ., ethyl cellulose, cellulose acetate, carboxymethyl cellulose calcium, sodium carboxymethyl cellulose), polyviny
- suitable fillers for use in the pharmaceutical compositions and dosage forms disclosed herein include, but are not limited to, talc, calcium carbonate (e.g., granules or powder), microcrystalline cellulose, powdered cellulose, dextrates, kaolin, mannitol, silicic acid, sorbitol, starch, pre-gelatinized starch, and mixtures thereof.
- Disintegrants may be used in the compositions of the invention to provide tablets that disintegrate when exposed to an aqueous environment. Too much of a disintegrant may produce tablets which disintegrate in the bottle. Too little may be insufficient for disintegration to occur, thus altering the rate and extent of release of the active ingredients from the dosage form. Thus, a sufficient amount of disintegrant that is neither too little nor too much to detrimentally alter the release of the active ingredient(s) may be used to form the dosage forms of the compounds disclosed herein. The amount of disintegrant used may vary based upon the type of formulation and mode of administration, and may be readily discernible to those of ordinary skill in the art.
- Disintegrants that can be used to form pharmaceutical compositions and dosage forms of the invention include, but are not limited to, agar-agar, alginic acid, calcium carbonate, microcrystalline cellulose, croscarmellose sodium, crospovidone, polacrilin potassium, sodium starch glycolate, potato or tapioca starch, other starches, pre-gelatinized starch, other starches, clays, other algins, other celluloses, gums or mixtures thereof.
- Lubricants which can be used to form pharmaceutical compositions and dosage forms of the invention include, but are not limited to, calcium stearate, magnesium stearate, sodium stearyl fumarate, mineral oil, light mineral oil, glycerin, sorbitol, mannitol, polyethylene glycol, other glycols, stearic acid, sodium lauryl sulfate, talc, hydrogenated vegetable oil (e.g, peanut oil, cottonseed oil, sunflower oil, sesame oil, olive oil, corn oil, and soybean oil), zinc stearate, ethyl oleate, ethylaureate, agar, or mixtures thereof.
- Additional lubricants include, for example, a syloid silica gel, a coagulated aerosol of synthetic silica, silicified microcrystalline cellulose, or mixtures thereof.
- a lubricant can optionally be added in an amount of less than about 0.5% or less than about 1% (by weight) of the pharmaceutical composition.
- the active pharmaceutical ingredient(s) may be combined with various sweetening or flavoring agents, coloring matter or dyes and, if so desired, emulsifying and/or suspending agents, together with such diluents as water, ethanol, propylene glycol, glycerin and various combinations thereof.
- the tablets can be uncoated or coated by known techniques to delay disintegration and absorption in the gastrointestinal tract and thereby provide a sustained action over a longer period.
- a time delay material such as glyceryl monostearate or glyceryl distearate can be employed.
- Formulations for oral use can also be presented as hard gelatin capsules wherein the active ingredient is mixed with an inert solid diluent, for example, calcium carbonate, calcium phosphate or kaolin, or as soft gelatin capsules wherein the active ingredient is mixed with water or an oil medium, for example, peanut oil, liquid paraffin or olive oil.
- Surfactants which can be used to form pharmaceutical compositions and dosage forms of the invention include, but are not limited to, hydrophilic surfactants, lipophilic surfactants, and mixtures thereof. That is, a mixture of hydrophilic surfactants may be employed, a mixture of lipophilic surfactants may be employed, or a mixture of at least one hydrophilic surfactant and at least one lipophilic surfactant may be employed.
- a suitable hydrophilic surfactant may generally have an HLB value of at least 10, while suitable lipophilic surfactants may generally have an HLB value of or less than about 10
- An empirical parameter used to characterize the relative hydrophilicity and hydrophobicity of non ionic amphiphilic compounds is the hydrophilic-lipophilic balance (“HLB” value).
- HLB hydrophilic-lipophilic balance
- Surfactants with lower HLB values are more lipophilic or hydrophobic, and have greater solubility in oils, while surfactants with higher HLB values are more hydrophilic, and have greater solubility in aqueous solutions.
- Hydrophilic surfactants are generally considered to be those compounds having an HLB value greater than about 10, as well as anionic, cationic, or zwitterionic compounds for which the HLB scale is not generally applicable.
- lipophilic (i.e., hydrophobic) surfactants are compounds having an HLB value equal to or less than about 10.
- HLB value of a surfactant is merely a rough guide generally used to enable formulation of industrial, pharmaceutical and cosmetic emulsions.
- Hydrophilic surfactants may be either ionic or non-ionic. Suitable ionic surfactants include, but are not limited to, alkylammonium salts; fusidic acid salts; fatty acid derivatives of amino acids, oligopeptides, and polypeptides; glyceride derivatives of amino acids,
- oligopeptides, and polypeptides lecithins and hydrogenated lecithins; lysolecithins and hydrogenated lysolecithins; phospholipids and derivatives thereof; lysophospholipids and derivatives thereof; carnitine fatty acid ester salts; salts of alkylsulfates; fatty acid salts; sodium docusate; acyllactylates; mono- and di-acetylated tartaric acid esters of mono- and di-glycerides; succinylated mono- and di-glycerides; citric acid esters of mono- and di-glycerides; and mixtures thereof.
- ionic surfactants include, by way of example:
- lecithins lysolecithin, phospholipids, lysophospholipids and derivatives thereof; carnitine fatty acid ester salts; salts of alkylsulfates; fatty acid salts; sodium docusate; acyllactylates; mono- and di-acetylated tartaric acid esters of mono- and di-glycerides; succinylated mono- and di- glycerides; citric acid esters of mono- and di-glycerides; and mixtures thereof.
- Ionic surfactants may be the ionized forms of lecithin, lysolecithin, phosphatidylcholine, phosphatidylethanolamine, phosphatidylglycerol, phosphatidic acid, phosphatidylserine, lysophosphatidylcholine, lysophosphatidylethanolamine, lysophosphatidylglycerol,
- lysophosphatidic acid lysophosphatidylserine, PEG-phosphatidylethanolamine, PVP- phosphatidylethanolamine, lactylic esters of fatty acids, stearoyl-2-lactylate, stearoyl lactylate, succinylated monoglycerides, mono/diacetylated tartaric acid esters of mono/diglycerides, citric acid esters of mono/diglycerides, cholylsarcosine, caproate, caprylate, caprate, laurate, myristate, palmitate, oleate, ricinoleate, linoleate, linolenate, stearate, lauryl sulfate, teracecyl sulfate, docusate, lauroyl carnitines, palmitoyl carnitines, myristoyl carnitines, and salts and mixtures thereof.
- Hydrophilic non-ionic surfactants may include, but not limited to, alkylglucosides; alkylmaltosides; alkylthioglucosides; lauryl macrogolglycerides; polyoxyalkylene alkyl ethers such as polyethylene glycol alkyl ethers; polyoxyalkylene alkylphenols such as polyethylene glycol alkyl phenols; polyoxyalkylene alkyl phenol fatty acid esters such as polyethylene glycol fatty acids monoesters and polyethylene glycol fatty acids diesters; polyethylene glycol glycerol fatty acid esters; polyglycerol fatty acid esters; polyoxyalkylene sorbitan fatty acid esters such as polyethylene glycol sorbitan fatty acid esters; hydrophilic transesterification products of a polyol with at least one member of the group consisting of glycerides, vegetable oils, hydrogenated vegetable oils, fatty acids, and sterols; polyoxyethylene sterol
- hydrophilic-non-ionic surfactants include, without limitation, PEG- 10 laurate, PEG-12 laurate, PEG-20 laurate, PEG-32 laurate, PEG-32 dilaurate, PEG-12 oleate, PEG-15 oleate, PEG-20 oleate, PEG-20 dioleate, PEG-32 oleate, PEG-200 oleate, PEG-400 oleate, PEG- 15 stearate, PEG-32 distearate, PEG-40 stearate, PEG- 100 stearate, PEG-20 dilaurate, PEG-25 glyceryl trioleate, PEG-32 dioleate, PEG-20 glyceryl laurate, PEG-30 glyceryl laurate, PEG-20 glyceryl stearate, PEG-20 glyceryl oleate, PEG-30 glyceryl oleate, PEG-30 glyceryl o
- caprate/caprylate glycerides polyglyceryl- 10 laurate, PEG-30 cholesterol, PEG-25 phyto sterol, PEG-30 soya sterol, PEG-20 trioleate, PEG-40 sorbitan oleate, PEG-80 sorbitan laurate, polysorbate 20, polysorbate 80, POE-9 lauryl ether, POE-23 lauryl ether, POE- 10 oleyl ether, POE-20 oleyl ether, POE-20 stearyl ether, tocopheryl PEG- 100 succinate, PEG-24 cholesterol, polyglyceryl- lOoleate, Tween 40, Tween 60, sucrose monostearate, sucrose monolaurate, sucrose monopalmitate, PEG 10-100 nonyl phenol series, PEG 15-100 octyl phenol series, and poloxamers.
- Suitable lipophilic surfactants include, by way of example only: fatty alcohols; glycerol fatty acid esters; acetylated glycerol fatty acid esters; lower alcohol fatty acids esters; propylene glycol fatty acid esters; sorbitan fatty acid esters; polyethylene glycol sorbitan fatty acid esters; sterols and sterol derivatives; polyoxyethylated sterols and sterol derivatives; polyethylene glycol alkyl ethers; sugar esters; sugar ethers; lactic acid derivatives of mono- and di-glycerides;
- hydrophobic transesterification products of a polyol with at least one member of the group consisting of glycerides, vegetable oils, hydrogenated vegetable oils, fatty acids and sterols; oil- soluble vitamins/vitamin derivatives; and mixtures thereof.
- preferred lipophilic surfactants include glycerol fatty acid esters, propylene glycol fatty acid esters, and mixtures thereof, or are hydrophobic transesterification products of a polyol with at least one member of the group consisting of vegetable oils, hydrogenated vegetable oils, and triglycerides.
- the composition may include a solubilizer to ensure good
- solubilization and/or dissolution of the compound of the present invention and to minimize precipitation of the compound of the present invention. This can be especially important for compositions for non-oral use - e.g ., compositions for injection.
- a solubilizer may also be added to increase the solubility of the hydrophilic drug and/or other components, such as surfactants, or to maintain the composition as a stable or homogeneous solution or dispersion.
- solubilizers include, but are not limited to, the following: alcohols and polyols, such as ethanol, isopropanol, butanol, benzyl alcohol, ethylene glycol, propylene glycol, butanediols and isomers thereof, glycerol, pentaerythritol, sorbitol, mannitol, transcutol, dimethyl isosorbide, polyethylene glycol, polypropylene glycol, polyvinylalcohol,
- alcohols and polyols such as ethanol, isopropanol, butanol, benzyl alcohol, ethylene glycol, propylene glycol, butanediols and isomers thereof, glycerol, pentaerythritol, sorbitol, mannitol, transcutol, dimethyl isosorbide, polyethylene glycol, polypropylene glycol, polyvinylalcohol,
- epsilon - caprolactone and isomers thereof, d-valerolactone and isomers thereof, b-butyrolactone and isomers thereof; and other solubilizers known in the art, such as dimethyl acetamide, dimethyl isosorbide, N-methyl pyrrolidones, monooctanoin, diethylene glycol monoethyl ether, and water.
- solubilizers may also be used. Examples include, but not limited to, triacetin, tri ethyl citrate, ethyl oleate, ethyl caprylate, dimethylacetamide, N-methylpyrrolidone, N-hydroxyethylpyrrolidone, polyvinylpyrrolidone, hydroxypropyl methylcellulose,
- hydroxypropyl cyclodextrins ethanol, polyethylene glycol 200-100, glycofurol, transcutol, propylene glycol, and dimethyl isosorbide.
- Particularly preferred solubilizers include sorbitol, glycerol, triacetin, ethyl alcohol, PEG-400, glycofurol and propylene glycol.
- the amount of solubilizer that can be included is not particularly limited.
- the amount of a given solubilizer may be limited to a bioacceptable amount, which may be readily determined by one of skill in the art.
- the solubilizer can be in a weight ratio of 10%, 25%, 50%, 100%, or up to about 200% by weight, based on the combined weight of the drug, and other excipients.
- very small amounts of solubilizer may also be used, such as 5%, 2%, 1% or even less.
- the solubilizer may be present in an amount of about 1% to about 100%, more typically about 5% to about 25% by weight.
- the composition can further include one or more pharmaceutically acceptable additives and excipients.
- additives and excipients include, without limitation, detackifiers, anti- foaming agents, buffering agents, polymers, antioxidants, preservatives, chelating agents, viscomodulators, tonicifiers, flavorants, colorants, odorants, opacifiers, suspending agents, binders, fillers, plasticizers, lubricants, and mixtures thereof.
- an acid or a base may be incorporated into the composition to facilitate processing, to enhance stability, or for other reasons.
- pharmaceutically acceptable bases include amino acids, amino acid esters, ammonium hydroxide, potassium hydroxide, sodium hydroxide, sodium hydrogen carbonate, aluminum hydroxide, calcium carbonate, magnesium hydroxide, magnesium aluminum silicate, synthetic aluminum silicate, synthetic hydrocalcite, magnesium aluminum hydroxide, diisopropylethylamine, ethanolamine, ethylenediamine, triethanolamine, triethylamine, triisopropanol amine, trimethylamine, tris(hydroxymethyl)aminom ethane (TRIS) and the like.
- bases that are salts of a pharmaceutically acceptable acid, such as acetic acid, acrylic acid, adipic acid, alginic acid, alkanesulfonic acid, amino acids, ascorbic acid, benzoic acid, boric acid, butyric acid, carbonic acid, citric acid, fatty acids, formic acid, fumaric acid, gluconic acid, hydroquinosulfonic acid, isoascorbic acid, lactic acid, maleic acid, oxalic acid, para-bromophenylsulfonic acid, propionic acid, p-toluenesulfonic acid, salicylic acid, stearic acid, succinic acid, tannic acid, tartaric acid, thioglycolic acid, toluenesulfonic acid, uric acid, and the like.
- a pharmaceutically acceptable acid such as acetic acid, acrylic acid, adipic acid, alginic acid, alkanesulfonic acid, amino acids
- Salts of polyprotic acids such as sodium phosphate, disodium hydrogen phosphate, and sodium dihydrogen phosphate can also be used.
- the cation can be any convenient and pharmaceutically acceptable cation, such as ammonium, alkali metals and alkaline earth metals.
- Example may include, but not limited to, sodium, potassium, lithium, magnesium, calcium and ammonium.
- Suitable acids are pharmaceutically acceptable organic or inorganic acids.
- suitable inorganic acids include hydrochloric acid, hydrobromic acid, hydriodic acid, sulfuric acid, nitric acid, boric acid, phosphoric acid, and the like.
- Suitable organic acids include acetic acid, acrylic acid, adipic acid, alginic acid, alkanesulfonic acids, amino acids, ascorbic acid, benzoic acid, boric acid, butyric acid, carbonic acid, citric acid, fatty acids, formic acid, fumaric acid, gluconic acid, hydroquinosulfonic acid, isoascorbic acid, lactic acid, maleic acid, methanesulfonic acid, oxalic acid, para-bromophenylsulfonic acid, propionic acid, p- toluenesulfonic acid, salicylic acid, stearic acid, succinic acid, tannic acid, tartaric acid, thioglycolic acid, toluenesulfonic acid and uric acid.
- Pharmaceutical Compositions for Injection include acetic acid, acrylic acid, adipic acid, alginic acid, alkanesulfonic acids, amino acids, ascorbic acid
- the invention provides a pharmaceutical composition for injection containing: a tanshinone or tanshinone analog, or pharmaceutically acceptable salt thereof, described herein, and a pharmaceutical excipient suitable for injection.
- a pharmaceutical composition for injection containing: a tanshinone or tanshinone analog, or pharmaceutically acceptable salt thereof, described herein, and a pharmaceutical excipient suitable for injection.
- Components and amounts of compounds in the compositions are as described herein.
- Aqueous solutions in saline are also conventionally used for injection.
- Ethanol, glycerol, propylene glycol and liquid polyethylene glycol (and suitable mixtures thereof), cyclodextrin derivatives, and vegetable oils may also be employed.
- the proper fluidity can be maintained, for example, by the use of a coating, such as lecithin, for the maintenance of the required particle size in the case of dispersion and by the use of surfactants.
- the prevention of the action of microorganisms can be brought about by various antibacterial and antifungal agents, for example, parabens, chlorobutanol, phenol, sorbic acid, and thimerosal.
- Sterile injectable solutions are prepared by incorporating: a tanshinone or tanshinone analog, or pharmaceutically acceptable salt thereof, described herein, in the required amounts in the appropriate solvent with various other ingredients as enumerated above, as required, followed by filtered sterilization.
- dispersions are prepared by incorporating the various sterilized active ingredients into a sterile vehicle which contains the basic dispersion medium and the required other ingredients from those enumerated above.
- certain desirable methods of preparation are vacuum drying and freeze-drying techniques which yield a powder of the active ingredient plus any additional desired ingredient from a previously sterile-filtered solution thereof.
- the invention provides a pharmaceutical composition for transdermal delivery containing: a compound described herein (e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)), or pharmaceutically acceptable salt thereof, described herein, and a pharmaceutical excipient suitable for transdermal delivery.
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)
- TSN1 tanshinone 1
- dHTSNl dihydrotanshinone 1
- dHTSN dihydrotanshinone
- compositions of the present invention can be formulated into preparations in solid, semi-solid, or liquid forms suitable for local or topical administration, such as gels, water soluble jellies, creams, lotions, suspensions, foams, powders, slurries, ointments, solutions, oils, pastes, suppositories, sprays, emulsions, saline solutions, dimethylsulfoxide (DMSO)-based solutions.
- DMSO dimethylsulfoxide
- carriers with higher densities are capable of providing an area with a prolonged exposure to the active ingredients.
- a solution formulation may provide more immediate exposure of the active ingredient to the chosen area.
- compositions also may comprise suitable solid or gel phase carriers or excipients, which are compounds that allow increased penetration of, or assist in the delivery of, therapeutic molecules across the stratum corneum permeability barrier of the skin.
- suitable solid or gel phase carriers or excipients which are compounds that allow increased penetration of, or assist in the delivery of, therapeutic molecules across the stratum corneum permeability barrier of the skin.
- penetration-enhancing molecules known to those trained in the art of topical formulation.
- humectants e.g ., urea
- glycols e.g, propylene glycol
- alcohols e.g, ethanol
- fatty acids e.g, oleic acid
- surfactants e.g, isopropyl myristate and sodium lauryl sulfate
- pyrrolidones e.g, isopropyl myristate and sodium lauryl sulfate
- pyrrolidones e.glycerol monolaurate
- sulfoxides e.g, menthol
- amines amides, alkanes, alkanols, water, calcium carbonate, calcium phosphate, various sugars, starches, cellulose derivatives, gelatin, and polymers such as polyethylene glycols.
- transdermal delivery devices Such transdermal patches may be used to provide continuous or discontinuous infusion of: a compound described herein (e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)), or pharmaceutically acceptable salt thereof, described herein, in controlled amounts, either with or without another active pharmaceutical ingredient.
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)
- TSN1 tanshinone 1
- dHTSNl dihydrotanshinone
- transdermal patches for the delivery of pharmaceutical agents is well known in the art. See, e.g., U.S. Patent Nos. 5,023,252; 4,992,445 and 5,001,139. Such patches may be constructed for continuous, pulsatile, or on demand delivery of
- compositions for Inhalation are provided.
- compositions for inhalation or insufflation include solutions and suspensions in
- compositions in preferably pharmaceutically acceptable solvents may be nebulized by use of inert gases. Nebulized solutions may be inhaled directly from the nebulizing device or the nebulizing device may be attached to a face mask tent, or intermittent positive pressure breathing machine. Solution, suspension, or powder compositions may be administered, preferably orally or nasally, from devices that deliver the formulation in an appropriate manner. Dry powder inhalers may also be used to provide inhaled delivery of the compositions.
- compositions may also be prepared from compositions described herein and one or more pharmaceutically acceptable excipients suitable for sublingual, buccal, rectal, intraosseous, intraocular, intranasal, epidural, or intraspinal administration. Preparations for such pharmaceutical compositions are well-known in the art. See, e.g ., Anderson, et al ., eds.,
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)
- TSN1 tanshinone 1
- dHTSNl dihydrotanshinone 1
- dHTSN dihydrotanshinone
- pharmaceutically acceptable salt thereof described herein, or a pharmaceutical composition of these compounds can be effected by any method that enables delivery of the compounds to the site of action.
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- TSN1 tanshinone 1
- dHTSNl dihydrotanshinone 1
- dHTSN dihydrotanshinone
- compositions of the invention may also be delivered via an impregnated or coated device such as a stent, for example, or an artery-inserted cylindrical polymer.
- a method of administration may, for example, aid in the prevention or amelioration of restenosis following procedures such as balloon angioplasty.
- compounds of the invention may slow or inhibit the migration and proliferation of smooth muscle cells in the arterial wall which contribute to restenosis.
- a compound of the invention may be administered, for example, by local delivery from the struts of a stent, from a stent graft, from grafts, or from the cover or sheath of a stent.
- a compound of the invention is admixed with a matrix.
- Such a matrix may be a polymeric matrix, and may serve to bond the compound to the stent.
- Polymeric matrices suitable for such use include, for example, lactone-based polyesters or copolyesters such as polylactide, polycaprolactonglycolide, polyorthoesters, polyanhydrides, polyaminoacids, polysaccharides, polyphosphazenes, poly(ether-ester) copolymers ( e.g ., PEO-PLLA); polydimethylsiloxane, poly(ethylene-vinylacetate), acrylate- based polymers or copolymers (e.g., polyhydroxy ethyl methylmethacrylate, polyvinyl pyrrolidinone), fluorinated polymers such as polytetrafluoroethylene and cellulose esters.
- lactone-based polyesters or copolyesters such as polylactide, polycaprolactonglycolide, polyorthoesters, polyanhydr
- Suitable matrices may be nondegrading or may degrade with time, releasing the compound or compounds.
- a compound e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone
- dHTSN dHTSN
- dHTSN pharmaceutically acceptable salt thereof, described herein
- the compounds may be applied in a solvent and the solvent may be allowed to evaporate, thus forming a layer of compound onto the stent.
- the compound may be located in the body of the stent or graft, for example in microchannels or micropores. When implanted, the compound diffuses out of the body of the stent to contact the arterial wall.
- Such stents may be prepared by dipping a stent manufactured to contain such micropores or microchannels into a solution of the compound of the invention in a suitable solvent, followed by evaporation of the solvent. Excess drug on the surface of the stent may be removed via an additional brief solvent wash.
- compounds of the invention may be covalently linked to a stent or graft.
- a covalent linker may be used which degrades in vivo , leading to the release of the compound of the invention. Any bio-labile linkage may be used for such a purpose, such as ester, amide or anhydride linkages.
- a compound e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)), or pharmaceutically acceptable salt thereof, described herein, may additionally be administered intravascularly from a balloon used during angioplasty.
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)
- Extravascular administration of a compound e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)), or pharmaceutically acceptable salt thereof, described herein, via the pericard or via advential application of formulations of the invention may also be performed to decrease restenosis.
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) or dihydrotanshinone (dHTSN)
- TSN1 tanshinone 1
- dHTSNl dihydrotanshinone 1
- dHTSN dihydrotanshinone
- Exemplary parenteral administration forms include solutions or suspensions of a compound (e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)), or pharmaceutically acceptable salt thereof, in sterile aqueous solutions, for example, aqueous propylene glycol or dextrose solutions.
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- TSN1 tanshinone 1
- dHTSNl dihydrotanshinone 1
- kits include a compound (e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)), or pharmaceutically acceptable salt thereof, described herein, in suitable packaging, and written material that can include instructions for use, discussion of clinical studies and listing of side effects.
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydro
- the kit may further contain another active pharmaceutical ingredient.
- the compound described herein e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- TSN1 tanshinone 1
- dHTSNl dihydrotanshinone 1
- dHTSN dihydrotanshinone
- the compound described herein e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)), or pharmaceutically acceptable salt thereof, and the agent are provided as a single composition within a container in the kit.
- suitable packaging and additional articles for use e.g., measuring cup for liquid preparations, foil wrapping to minimize exposure to air, and the like
- Kits described herein can be provided, marketed and/or promoted to health providers, including physicians, nurses, pharmacists, formulary officials, and the like. Kits may also, in some embodiments, be marketed directly to the consumer.
- kits described above are preferably for use in the treatment of the diseases and conditions described herein.
- the kits are for use in the treatment of bacterial infection.
- kits described herein are for use in the treatment of bacterial infection.
- the kits described herein are for use in the treatment of a bacterial infection caused by and/or associate with a Gram-negative bacteria.
- the kits described herein are for use in the treatment of a bacterial infection selected from the group consisting of bacterial infection is a lung infection, skin infection, soft tissue infection, gastrointestinal infection, urinary tract infection, meningitis, or sepsis.
- the bacterial infection is pneumonia.
- the bacterial infection is acute pneumonia.
- a compound e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- pharmaceutically acceptable salt thereof described herein
- administered will be dependent on the human or mammal being treated, the severity of the disorder or condition, the rate of administration, the disposition of the compounds and the discretion of the prescribing physician.
- an effective dosage of each is in the range of about 0.001 to about 100 mg per kg body weight per day, such as about 1 to about 35 mg/kg/day, in single or divided doses.
- dosage levels below the lower limit of the aforesaid range may be more than adequate, while in other cases still larger doses may be employed without causing any harmful side effect - e.g, by dividing such larger doses into several small doses for administration throughout the day.
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- TSN1 tanshinone 1
- dHTSNl dihydrotanshinone 1
- dHTSN dihydrotanshinone
- pharmaceutically acceptable salt thereof, described herein may be provided in units of mg/kg of body mass or in mg/m 2 of body surface area.
- a compound e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- pharmaceutically acceptable salt thereof described herein is administered in multiple doses.
- Dosing may be once, twice, three times, four times, five times, six times, or more than six times per day. Dosing may be once a month, once every two weeks, once a week, or once every other day.
- a compound e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl)
- a compound e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)), or pharmaceutically acceptable salt thereof, described herein, is administered once daily, while in other embodiments, a compound (e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)), or pharmaceutically acceptable salt thereof, described herein is administered twice daily, and in other embodiments a compound (e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)), or pharmaceutical
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- TSN1 tanshinone 1
- dHTSNl dihydrotanshinone 1
- dHTSN dihydrotanshinone
- a compound e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- a compound e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- a compound e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- TSN1 tanshinone 1
- dHTSNl dihydrotanshinone 1
- dHTSN dihydrotanshinone
- the administration of a compound continues for less than about 7 days.
- a compound e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- pharmaceutically acceptable salt thereof described herein
- an effective dosage of a compound is in the range of about 1 mg to about 500 mg, about 10 mg to about 300 mg, about 20 mg to about 250 mg, about 25 mg to about 200 mg, about 10 mg to about 200 mg, about 20 mg to about 150 mg, about 30 mg to about 120 mg, about 10 mg to about 90 mg, about 20 mg to about 80 mg, about 30 mg to about 70 mg, about 40 mg to about 60 mg, about 45 mg to about 55 mg, about 48 mg to about 52 mg, about 50 mg to about 150 mg, about 60 mg to about 140 mg, about 70 mg to about 130 mg, about 80 mg to about 120 mg, about 90 mg to about 110 mg, about 95 mg to about 105 mg, about 150 mg
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- T3SS inhibitors such as tanshinone 1 (TSN1), dihydrot
- an effective dosage of a compound is in the range of about 0.01 mg/kg to about 4.3 mg/kg, about 0.15 mg/kg to about 3.6 mg/kg, about 0.3 mg/kg to about 3.2 mg/kg, about 0.35 mg/kg to about 2.85 mg/kg, about 0.15 mg/kg to about 2.85 mg/kg, about 0.3 mg to about 2.15 mg/kg, about 0.45 mg/kg to about 1.7 mg/kg, about 0.15 mg/kg to about 1.3 mg/kg, about 0.3 mg/kg to about 1.15 mg/kg, about 0.45 mg/kg to about 1 mg/kg, about 0.55 mg/kg to about 0.85 mg/kg, about 0.65 mg/
- dosage levels below the lower limit of the aforesaid ranges may be more than adequate, while in other cases still larger doses may be employed without causing any harmful side effect - e.g ., by dividing such larger doses into several small doses for
- An effective amount of a compound e.g., T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)), or pharmaceutically acceptable salt thereof, described herein, may be administered in either single or multiple doses by any of the accepted modes of administration of agents having similar utilities, including rectal, buccal, intranasal and transdermal routes, by intra-arterial injection, intravenously, intraperitoneally, parenterally, intramuscularly, subcutaneously, orally, topically, or as an inhalant.
- T3SS inhibitors such as tanshinone and tanshinone analogs, including tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl) and dihydrotanshinone (dHTSN)
- pharmaceutically acceptable salt thereof, described herein may be administered in either single or multiple doses by
- a method of inhibiting treating or preventing bacterial infection in a subject in need thereof comprising administering to the subject a therapeutically effective amount of an inhibitor of Type 3 Secretion System (T3SS), wherein the inhibitor of T3SS blocks interaction between a T3SS needle protein and a T3SS chaperone protein.
- T3SS Type 3 Secretion System
- a method of inhibiting Type 3 Secretion System comprising contacting a T3SS needle protein or a T3SS chaperone protein with an agent that blocks interaction between the T3SS needle protein and T3SS chaperone protein.
- a method of inhibiting biogenesis of a Type 3 Secretion System (T3SS) needle is provided, the method comprising contacting a T3SS needle protein or a T3SS chaperone protein with an agent that blocks interaction between the T3SS needle protein and T3SS chaperone protein.
- a method of reducing bacterial virulence, cytotoxicity, and/or pathogenicity comprising contacting a T3SS needle protein or a T3SS chaperone protein with an agent that blocks interaction between the T3SS needle protein and T3SS chaperone protein.
- a method of reducing secretion of a bacterial virulence factor is provided, the method comprising contacting a T3SS needle protein or a T3SS chaperone protein with an agent that blocks interaction between the T3SS needle protein and T3SS chaperone protein.
- the blocking of the interaction between the T3SS needle protein and T3SS chaperone protein inhibits assembly or biogenesis of the T3SS needle protein.
- the T3SS needle protein is PscF and the T3SS chaperone protein is PscE-PscG.
- the agent that blocks interaction competes for binding to the T3SS needle protein with a T3SS chaperone protein, or competes for binding to a T3SS chaperone protein with a T3SS needle protein.
- the agent competes for binding with an IC50 less than 5 mM, less than 4mM, less than 3mM, less than 2mM, or less than ImM.
- the agent competes for binding with an IC50 between 0.1 mM to 5 mM, between 0.3 mM to 5 mM, between 0.5 mM to 3 mM, between 0.5 mM to 2 mM, between 0.5 mM to 1 mM, between 0.1 mM to 3 mM, between 0.1 mM to 1 mM, between 0.3 mM to 3 mM, between 0.3 mM to 2 mM.
- the agent competes for binding with an IC50 of about O.ImM, about 0.2 mM, about 0.3mM, about 0.4 mM, about 0.5 mM, about 0.6 mM, about 0.7 mM, about 0.8 mM, about 0.9 mM, about 1 mM, about 1.5 mM, about 2 mM, about 2.5 mM, about 3 mM, about 3.5 mM, about 4 mM, about 4.5 mM, or about 5 mM.
- an IC50 of about O.ImM, about 0.2 mM, about 0.3mM, about 0.4 mM, about 0.5 mM, about 0.6 mM, about 0.7 mM, about 0.8 mM, about 0.9 mM, about 1 mM, about 1.5 mM, about 2 mM, about 2.5 mM, about 3 mM, about 3.5 mM, about 4 mM, about 4.5 mM, or about 5
- the agent binds a PscF -binding pocket of PscG. In some embodiments, the agent binds one or more residues on PscG selected from Trp79, Trp 67, Trp73, and Trp31. In some embodiments, the agent binds residue Trp79 on PscG.
- the agent that blocks interaction between the T3SS needle protein and T3SS chaperone protein is a tanshinone or tanshinone analog, or the
- the agent that blocks interaction between the T3SS needle protein and T3SS chaperone protein tanshinone 1 (TSN1), dihydrotanshinone 1 (dHTSNl), dihydrotanshinone (dHTSN), or the pharmaceutically acceptable salts, solvates, hydrates, cocrystals, or prodrugs thereof.
- fluorescence polarization-based screening identified tanshinones as inhibitors of the biogenesis of the type 3 secretion system needle of Pseudomonas aeruginosa with potent antibacterial activity.
- a method of identifying an inhibitor of Type 3 Secretion System comprising: (a) adding a candidate agent to a composition comprising a protein complex in the T3SS, wherein a component of the protein complex is fluorescently labeled; (b) determining the fluorescence polarization (FP) of the fluorescently labeled component; wherein the candidate agent is identified as an inhibitor of T3SS if the FP is decreased relative to a reference FP level.
- the protein complex comprises a T3SS needle protein and a T3SS chaperone protein.
- the protein complex is PscF-PscE-PscG.
- the method is high-throughput.
- the PscF is labeled with a fluorescent label.
- the fluorescent label can be any known in the art, e.g., fluorescent dyes such as fluorescein, rhodamine, or BODIPY.
- the PscF is truncated.
- the labeled PscF comprises the amino acid sequence TVTRALRDLMQGILQKI (SEQ ID NO: 1).
- the reference FP level is the FP of the fluorescently labeled component without a candidate agent added to the composition.
- the composition is a solution.
- the candidate agent can be a small molecule compound.
- the candidate agent is a tanshinone or tanshinone analog.
- Example 1 Design of screen for inhibitors of T3SS needle biogenesis
- Pseudomonas aeruginosa T3SS the needle is formed by multiple copies of a single protein termed PscF of 85 amino acid residues.
- PscF Prior to its secretion for needle assembly, PscF is protected in a heterotrimeric complex by two chaperone proteins, PscE (67 AA) and PscG (115 AA).
- PscG stabilized by PscE, presents a large concaved hydrophobic surface for interactions with the non-polar residues of PscF (FIG.
- Pseudomonas aeruginosa mutants deficient in either PscE or PscG or both fail to secrete PscF for assembly of the T3SS needle and, consequently, are non-cytotoxic.
- inhibitors that block PscF interactions with the PscE-PscG dimer are expected to induce premature aggregation and degradation of PscF in the bacterial cytosol, debilitating the biogenesis of the Pseudomonas aeruginosa T3SS needle.
- Example 2 Chemical synthesis and characterization of PscE. PscF and PscG.
- Example 3 Design and validation of an FP-based readout for HTS.
- FP assays have been widely used in HTS for low molecular weight inhibitors that target proteins such as enzymes and receptors in the presence of a small, fluorescently labeled natural substrate or ligand of the target protein.
- target proteins such as enzymes and receptors
- fluorescently labeled natural substrate or ligand of the target protein For dyes attached to small, rapidly rotating molecules,
- FP is low as the molecules tumble fast in solution (relative to the fluorescence lifetime) and efficiently“scrambles” the polarization of emitted light. However, upon binding by a large molecule, tumbling of the dye complex is slowed, resulting in an increased polarization of fluorescence emission.
- FIG. 3A The strategy for our FP assay is illustrated in FIG. 3A, where addition of a library compound to the high-polarization heterotrimeric complex leads to the displacement of fluorescently labeled PscF from the PscE-PscG heterodimer, resulting in a decrease in FP.
- Example 4 Identification of tanshinones as competitive inhibitors of PscF binding to PscE-PscG.
- an ultra-low throughput ten natural herbal compounds in traditional Chinese medicine were screened: ammonium glycyrrhizinate, astragaloside A, baicalein, curculigoside, ginsenosides Rbl and Re, osthol, panaxadiol, quercetin, and tanshinone 1 (TSN1) (FIG. 15).
- TSN1 when added to the preformed heterotrimer PscE- PscG-PscF 69 85 , reduced not only a-helicity of the complex (FIG. 16A), but also its thermal stability (FIGS. 16B-16C).
- dHTSNl dihydrotanshinone 1
- dHTSN dihydrotanshinone 1
- dHTSN dihydrotanshinone
- Example 5 Structural characterization of tanshinone interactions with PscE-PscG.
- a heterodimeric complex comprising synthetic PscE and an 15 N-labelled recombinant PscG (FIG. 19) was characterized by NMR spectroscopy in the presence and absence of the tanshinone dHTSNl .
- FIG. 4A black
- the l5 N-'H HSQC spectrum of 15 N-PscG in complex with PscE exhibited the typical feature of an a-helical protein where its resonance peaks distributed between 7.3 and 9.0 ppm in the proton dimension.
- the spectrum had a good dispersion except for the broadening of some resonance peaks in the center, indicating that parts of the PscG conformation were still flexible.
- Trp residues [00171] Significant changes to the side-chain amide resonance peaks of Trp residues were observed (the inset, FIG. 4A). There are four Trp residues in PscG, three of which, Trp 67,
- Trp73 and Trp79 are located on the same helix involved in PscF interactions (FIG. 4B).
- the four individual resonance peaks of Trp in the 15 N- C H HSQC spectrum were arbitrarily labelled as Wl, W2, W3 and W4 (FIG. 4A, black).
- Wl, W2, W3 and W4 FIG. 4A, black
- FIG. 4A shows that upon binding of dHTSNl to the PscG/PscE heterodimer, three amide resonance peaks of Trp became broadened and one remained unchanged.
- These results indicate that dHTSNl binding is localized to the PscF-interacting helix of PscG, inducing direct and/or indirect changes in side-chain amide resonance to the three proximal Trp residues.
- molecular docking studies pinpointed Trp79, among other residues of PscG (FIG. 20), to be directly involved in tanshinone interactions (FIG. 4C).
- ExoS and ExoT are homologous exotoxins with GTPase activating and ADP ribosyltransferase activities, capable of disrupting the actin cytoskeleton and inducing apoptotic cell death, while ExoET has phospholipase A 2 activity that induces rapid necrotic cell death via membrane lysis. It is anticipated that inhibitors of the biogenesis of the Pseudomonas aeruginosa T3SS needle will shut down the exotoxin transport machinery, preventing or reducing the cytotoxic and pathogenic effects of
- Pseudomonas aeruginosa on host cells and tissues.
- Example 7 Tanshinones reduce cytotoxicity of Pseudomonas aerusinosa PAOl to macrophages and inhibit intracellular bacterial survival.
- J774A.1 cells were infected with PAOl in the presence of various tanshinone compounds and cytotoxicity was quantified by measuring the release into the medium of the cytoplasmic enzyme lactate dehydrogenase (LDH) by dying macrophages. As shown in FIG.
- TSN1, dHTSN and dHTSNl inhibited Pseudomonas aeruginosa- induced cell lysis in a dose dependent manner, whereas crpTSN was inactive.
- Western blot analysis implied a reduction in activated caspase-l as the plausible cause for the survival of infected macrophages (FIG. 6B), consistent with functional inhibition of the T3SS by tanshinones.
- Example 8 In vivo efficacy of tanshinones in a murine model of acute pneumonia.
- Phagocytic macrophages and neutrophils play critical roles in bacterial clearance during acute Pseudomonas aeruginosa infection in vivo. To subvert their antibacterial defense,
- Pseudomonas aeruginosa has evolved T3SS-dependent mechanisms to lyse macrophages and impair neutrophil function. Production of reactive oxygen species (ROS) by neutrophils is critical for intracellular killing of phagocytosed bacteria.
- ROS reactive oxygen species
- inhibition of the biogenesis of the Pseudomonas aeruginosa T3SS needle should improve phagocytic functions of macrophages and neutrophils, leading to efficient bacterial clearance from infected host.
- Example 9 Other known inhibitors of the T3SS.
- T3SS has already validated the T3SS as an attractive drug target for antibiotic discovery and development.
- Two recent articles provide a comprehensive review of novel strategies for the treatment of Pseudomonas aeruginosa infections, including the targeting of the T3SS.
- Passive and active immunization with T3SS structural and effector proteins can prevent or reduce T3SS-induced bacterial virulence in vitro and in vivo.
- various cellular reporter assays coupled with library screening led to the identification of some small molecule inhibitors of the T3SS of relatively low potency, the lack of understanding of precise molecular targets and mechanisms of action has hampered their further development.
- Phenoxyacetamides are the only known class of compounds that block both the T3SS-mediated secretion and translocation of Pseudomonas aeruginosa effectors through binding to PscF to interfere with its multimerization.
- a prototypic phenoxyacetamide compound MBX-1641 in our in vitro and in vivo assays was tested and found functionally comparable to dHTSN and dHTSNl. As shown in FIG. S18, MBX-1641 inhibited the secretion of ExoS in PAOl, the cytotoxicity of PAOl to murine macrophages, and the intracellular proliferation of PAOl as well.
- MBX-1641 reduced bacterial burden in the bronchoalveolar lavage of PAOl - infected mice (FIG. S18F). In contrast to tanshinones, however, MBX-1641 had no effect on the binding of PscF to PscE-PscG as analyzed by fluorescence polarization (FIG. S18G). These findings indicate that phenoxyacetamides and tanshinones mechanistically differ as inhibitors of the Pseudomonas aeruginosa T3SS.
- tanshionones may be used directly, upon conclusion of a comprehensive toxicology study to ascertain the safety of individual compounds, to alleviate Pseudomonas aeruginosa- associated pulmonary infections without inducing antibiotic resistance.
- Our work demonstrated the feasibility of targeting the biogenesis of the T3SS needle for antibiotic discovery by developing a sensitive fluorescence polarization assay for automated HTS of library compounds. Since the T3SS is highly conserved in many other pathogenic Gram negative bacteria such as E. coli , Salmonella , Shigella , Yersinia , Vibrio , Burkholderia , and Chlamydia , our strategy for antibiotic discovery may have broad implications in combating antibiotic resistance.
- Boc-amino acids were purchased from Peptides Institute (Japan). Boc-Leu- OCEh-PAM resin and p-methyl-BHA (MBHA) resin were purchased from Applied Biosystems (Foster City, CA, USA). N,N-Dimethylformamide (DMF), Diehl or omethane (DCM), N,N- Diisopropylethylamine (DIEA), Dimethyl sulfoxide (DMSO), methanol, 4-mercaptophenylacetic acid (MPAA), tris-(2-carboxyethyl) phosphine (TCEP), p-cresol and HPLC grade acetonitrile were purchased from Sigma-Aldrich (St. Louis, MO, USA). Hydrogen fluoride (HF) was purchased from APK (Shanghai, China). Trifluoroacetic acid (TFA) was purchased from
- Tanshinone IIA dihydrotanshinone 1, tanshinone 1, cryptotanshinone were purchased from Nature Standard (Shanghai, China).
- Fluorescence polarization (FP) and FP-based competitive binding assays were done using black, low protein binding 96-well plates (Thermo Fisher Scientific) in a total volume of 100 pl per well of 10 mM Tris buffer containing 150 mM NaCl and 1 mM EDTA, pH 7.0, unless indicated otherwise. After a gentle mixing and incubation for 3 h, FP readings were taken at 470 nm (excitation) and 530 nm (emission) wavelengths on a Tecan Infinite M2000 fluorescence plate reader. Nonlinear regression analyses were performed to give rise to Kd and ICso values as previously described.
- FAM-PscF 69 85 400 nM
- serially diluted PscG or PscE-PscG 0.64 pM
- 95 pl of FAM-PSCF 69'85 -PSCE-PSCG 100 nM
- 5 pl of small molecule inhibitor in DMSO was mixed with 5 pl of small molecule inhibitor in DMSO to a final molar concentration of 1, 10, 100, or 1000 pM.
- ITC Isothermal titration calorimetry
- CD Circular dichroism
- the lysates were centrifuged at 20,000 rpm for 30 min, and the supernatant was loaded onto a 10 ml Ni-NTA agarose column (Qiagen, USA). The elute was concentrated to 10-12 ml under denaturation conditions, followed by purification on a Sep-Pak Cl 8 column. Peak fractions containing 15 N-PscG were lyophilized. The 15 N-PscG protein samples were dissolved in a buffer containing 20 mM sodium phosphate (pH 7.4), 10 mM NaCl, and mixed with PscE or PscE and dHTSNl at an equal molar ratio. The mixtures were dialyzed against the same buffer overnight and then concentrated to ⁇ 300 m ⁇ .
- Pseudomonas aeruginosa isolate PAOl and its mutant strain PAOl ApscC were cultured in Luria broth (LB) at 37 °C.
- the mouse macrophage cell line J774A.1 (ATCC TIB-67) was cultured in Dulbecco's Modified Eagle Medium (DMEM) supplemented with 10% fetal bovine serum (FBS) and incubated at 37°C in 5% CO2.
- DMEM Dulbecco's Modified Eagle Medium
- FBS fetal bovine serum
- Bactericidal activity assay PAOl overnight cultures were diluted 1 : 100 in LB, in the presence of tanshinone inhibitors (100 mM compound, 2% DMSO). After a 3 h-incubation with mild agitation, bacteria were diluted and plated. Bactericidal activity was determined by colony counting and normalized against the activity under mock treatment (2% DMSO only). Results are represented as the mean ⁇ SD percentage of input bacteria of three independent experiments.
- Cytoplasmic lactate dehydrogenase (LDH) release assay 1 x 10 4 J774a cells were seeded into each well of a 96-well plate and grown for 24 h before infection. One hour before the infection, cell culture medium was changed into serum-free medium and PAO-l from mid exponential phase was added to the cells at a multiplicity of infection (MOI) of 8. In the presence of different concentration of tanshinone inhibitors (0-100 mM compound, 2% DMSO), bacteria/cells mixtures were incubated for 5 hours. LDH released into supernatant was detected by LDH detection kit (Beyotime, COO 17) as instructed by the manufacturer. Results were normalized against the LDH released by PAO-l -infected cells with mock treatment (2%
- Cells were collected with lysis buffer (with 2-mercaptoethanol) according to the BCA protein quantification protocol (Beyotime, P0017), and subjected to 15% SDS-PAGE gel and immunoblotting with anti-pro Caspase 1 + plO + pl2 antibody (Abeam, abl795l5, at 1 : 1000 dilution) and corresponding HRP- conjugated secondary antibody. Beta-actin was used as internal control.
- C57BL/6J mice were lightly anesthetized with inhaled sevoflurane and infected by intranasal instillation of PAOl ( l x l 0 7 CFU in 20 pL PBS) after lightly anesthetized with inhaled sevoflurane.
- Tanshinone inhibitors were administrated to the animals along with bacterial inoculation (100 pM, 1% DMSO). PBS containing 1% DMSO was used as mock treatment.
- 18 hours after infection animals were sacrificed and bronchoalveolar lavages were collected and plated to obtain the bacterial counts in the lavages.
- the lungs of sacrificed mice were then isolated and fixed in 10% buffered formalin, paraffin embedded and hematoxylin-eosin-stained for histopathological examination. Pathological scores of the tissues were assigned according to the degree of inflammation.
- tanshinone inhibitors 100 mM, 1% DMSO, in 10 pL PBS
- PBS containing 1% DMSO was used as mock treatment.
- Li, K.; Xu, C.; Jin, Y.; Sun, Z.; Liu, C.; Shi, J.; Chen, G; Chen, R.; Jin, S.; Wu, W., SuhB is a regulator of multiple virulence genes and essential for pathogenesis of Pseudomonas aeruginosa. MBio 2013, 4 (6), e004l9-004l3.
- Pseudomonas aeruginosa PcrV antigen has potent antibacterial activity. Infect Immun 2009, 77 (3), 1083-1090.
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